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drh4f26d6c2004-05-26 23:25:30 +00001/*
2** 2004 May 26
3**
4** The author disclaims copyright to this source code. In place of
5** a legal notice, here is a blessing:
6**
7** May you do good and not evil.
8** May you find forgiveness for yourself and forgive others.
9** May you share freely, never taking more than you give.
10**
11*************************************************************************
12**
13** This file contains code use to manipulate "Mem" structure. A "Mem"
14** stores a single value in the VDBE. Mem is an opaque structure visible
15** only within the VDBE. Interface routines refer to a Mem using the
16** name sqlite_value
17*/
18#include "sqliteInt.h"
drh4f26d6c2004-05-26 23:25:30 +000019#include "vdbeInt.h"
20
drh169f0772019-05-02 21:36:26 +000021/* True if X is a power of two. 0 is considered a power of two here.
22** In other words, return true if X has at most one bit set.
23*/
24#define ISPOWEROF2(X) (((X)&((X)-1))==0)
25
drh75fd0542014-03-01 16:24:44 +000026#ifdef SQLITE_DEBUG
27/*
28** Check invariants on a Mem object.
29**
30** This routine is intended for use inside of assert() statements, like
31** this: assert( sqlite3VdbeCheckMemInvariants(pMem) );
32*/
33int sqlite3VdbeCheckMemInvariants(Mem *p){
drhd3b74202014-09-17 16:41:15 +000034 /* If MEM_Dyn is set then Mem.xDel!=0.
drha0024e62017-07-27 15:53:24 +000035 ** Mem.xDel might not be initialized if MEM_Dyn is clear.
drhc91b2fd2014-03-01 18:13:23 +000036 */
37 assert( (p->flags & MEM_Dyn)==0 || p->xDel!=0 );
drhc91b2fd2014-03-01 18:13:23 +000038
drh722246e2014-10-07 23:02:24 +000039 /* MEM_Dyn may only be set if Mem.szMalloc==0. In this way we
40 ** ensure that if Mem.szMalloc>0 then it is safe to do
41 ** Mem.z = Mem.zMalloc without having to check Mem.flags&MEM_Dyn.
42 ** That saves a few cycles in inner loops. */
drh1eda9f72014-09-19 22:30:49 +000043 assert( (p->flags & MEM_Dyn)==0 || p->szMalloc==0 );
44
drh169f0772019-05-02 21:36:26 +000045 /* Cannot have more than one of MEM_Int, MEM_Real, or MEM_IntReal */
46 assert( ISPOWEROF2(p->flags & (MEM_Int|MEM_Real|MEM_IntReal)) );
drh74eaba42014-09-18 17:52:15 +000047
drha0024e62017-07-27 15:53:24 +000048 if( p->flags & MEM_Null ){
49 /* Cannot be both MEM_Null and some other type */
drh9d67afc2018-08-29 20:24:03 +000050 assert( (p->flags & (MEM_Int|MEM_Real|MEM_Str|MEM_Blob|MEM_Agg))==0 );
drha0024e62017-07-27 15:53:24 +000051
52 /* If MEM_Null is set, then either the value is a pure NULL (the usual
53 ** case) or it is a pointer set using sqlite3_bind_pointer() or
54 ** sqlite3_result_pointer(). If a pointer, then MEM_Term must also be
55 ** set.
56 */
57 if( (p->flags & (MEM_Term|MEM_Subtype))==(MEM_Term|MEM_Subtype) ){
58 /* This is a pointer type. There may be a flag to indicate what to
59 ** do with the pointer. */
60 assert( ((p->flags&MEM_Dyn)!=0 ? 1 : 0) +
61 ((p->flags&MEM_Ephem)!=0 ? 1 : 0) +
62 ((p->flags&MEM_Static)!=0 ? 1 : 0) <= 1 );
63
64 /* No other bits set */
drhe0f20b42019-04-01 20:57:11 +000065 assert( (p->flags & ~(MEM_Null|MEM_Term|MEM_Subtype|MEM_FromBind
drha0024e62017-07-27 15:53:24 +000066 |MEM_Dyn|MEM_Ephem|MEM_Static))==0 );
67 }else{
68 /* A pure NULL might have other flags, such as MEM_Static, MEM_Dyn,
69 ** MEM_Ephem, MEM_Cleared, or MEM_Subtype */
70 }
71 }else{
72 /* The MEM_Cleared bit is only allowed on NULLs */
73 assert( (p->flags & MEM_Cleared)==0 );
74 }
drhe2bc6552017-04-17 20:50:34 +000075
drh17bcb102014-09-18 21:25:33 +000076 /* The szMalloc field holds the correct memory allocation size */
77 assert( p->szMalloc==0
78 || p->szMalloc==sqlite3DbMallocSize(p->db,p->zMalloc) );
drhc91b2fd2014-03-01 18:13:23 +000079
80 /* If p holds a string or blob, the Mem.z must point to exactly
81 ** one of the following:
82 **
83 ** (1) Memory in Mem.zMalloc and managed by the Mem object
84 ** (2) Memory to be freed using Mem.xDel
peter.d.reid60ec9142014-09-06 16:39:46 +000085 ** (3) An ephemeral string or blob
drhc91b2fd2014-03-01 18:13:23 +000086 ** (4) A static string or blob
87 */
drh17bcb102014-09-18 21:25:33 +000088 if( (p->flags & (MEM_Str|MEM_Blob)) && p->n>0 ){
drhc91b2fd2014-03-01 18:13:23 +000089 assert(
drh17bcb102014-09-18 21:25:33 +000090 ((p->szMalloc>0 && p->z==p->zMalloc)? 1 : 0) +
drhc91b2fd2014-03-01 18:13:23 +000091 ((p->flags&MEM_Dyn)!=0 ? 1 : 0) +
92 ((p->flags&MEM_Ephem)!=0 ? 1 : 0) +
93 ((p->flags&MEM_Static)!=0 ? 1 : 0) == 1
94 );
95 }
drh75fd0542014-03-01 16:24:44 +000096 return 1;
97}
98#endif
99
drh83a1daf2019-05-01 18:59:33 +0000100/*
drh169f0772019-05-02 21:36:26 +0000101** Render a Mem object which is one of MEM_Int, MEM_Real, or MEM_IntReal
102** into a buffer.
drh83a1daf2019-05-01 18:59:33 +0000103*/
104static void vdbeMemRenderNum(int sz, char *zBuf, Mem *p){
105 StrAccum acc;
drh169f0772019-05-02 21:36:26 +0000106 assert( p->flags & (MEM_Int|MEM_Real|MEM_IntReal) );
drh83a1daf2019-05-01 18:59:33 +0000107 sqlite3StrAccumInit(&acc, 0, zBuf, sz, 0);
drh169f0772019-05-02 21:36:26 +0000108 if( p->flags & MEM_Int ){
drh83a1daf2019-05-01 18:59:33 +0000109 sqlite3_str_appendf(&acc, "%lld", p->u.i);
drh169f0772019-05-02 21:36:26 +0000110 }else if( p->flags & MEM_IntReal ){
111 sqlite3_str_appendf(&acc, "%!.15g", (double)p->u.i);
drh83a1daf2019-05-01 18:59:33 +0000112 }else{
113 sqlite3_str_appendf(&acc, "%!.15g", p->u.r);
114 }
115 assert( acc.zText==zBuf && acc.mxAlloc<=0 );
116 zBuf[acc.nChar] = 0; /* Fast version of sqlite3StrAccumFinish(&acc) */
117}
118
drh563ddbe2018-02-01 15:57:00 +0000119#ifdef SQLITE_DEBUG
120/*
drhdf82afc2019-05-16 01:22:21 +0000121** Validity checks on pMem. pMem holds a string.
122**
123** (1) Check that string value of pMem agrees with its integer or real value.
124** (2) Check that the string is correctly zero terminated
drh563ddbe2018-02-01 15:57:00 +0000125**
126** A single int or real value always converts to the same strings. But
127** many different strings can be converted into the same int or real.
128** If a table contains a numeric value and an index is based on the
129** corresponding string value, then it is important that the string be
130** derived from the numeric value, not the other way around, to ensure
131** that the index and table are consistent. See ticket
132** https://www.sqlite.org/src/info/343634942dd54ab (2018-01-31) for
133** an example.
134**
135** This routine looks at pMem to verify that if it has both a numeric
136** representation and a string representation then the string rep has
137** been derived from the numeric and not the other way around. It returns
138** true if everything is ok and false if there is a problem.
139**
140** This routine is for use inside of assert() statements only.
141*/
drhdf82afc2019-05-16 01:22:21 +0000142int sqlite3VdbeMemValidStrRep(Mem *p){
drh563ddbe2018-02-01 15:57:00 +0000143 char zBuf[100];
144 char *z;
145 int i, j, incr;
146 if( (p->flags & MEM_Str)==0 ) return 1;
drhdf82afc2019-05-16 01:22:21 +0000147 if( p->flags & MEM_Term ){
148 /* Insure that the string is properly zero-terminated. Pay particular
149 ** attention to the case where p->n is odd */
drhe72d1a82019-05-16 11:47:16 +0000150 if( p->szMalloc>0 && p->z==p->zMalloc ){
drhdf82afc2019-05-16 01:22:21 +0000151 assert( p->enc==SQLITE_UTF8 || p->szMalloc >= ((p->n+1)&~1)+2 );
152 assert( p->enc!=SQLITE_UTF8 || p->szMalloc >= p->n+1 );
153 }
154 assert( p->z[p->n]==0 );
155 assert( p->enc==SQLITE_UTF8 || p->z[(p->n+1)&~1]==0 );
156 assert( p->enc==SQLITE_UTF8 || p->z[((p->n+1)&~1)+1]==0 );
157 }
drh169f0772019-05-02 21:36:26 +0000158 if( (p->flags & (MEM_Int|MEM_Real|MEM_IntReal))==0 ) return 1;
drh83a1daf2019-05-01 18:59:33 +0000159 vdbeMemRenderNum(sizeof(zBuf), zBuf, p);
drh563ddbe2018-02-01 15:57:00 +0000160 z = p->z;
161 i = j = 0;
162 incr = 1;
163 if( p->enc!=SQLITE_UTF8 ){
164 incr = 2;
165 if( p->enc==SQLITE_UTF16BE ) z++;
166 }
167 while( zBuf[j] ){
168 if( zBuf[j++]!=z[i] ) return 0;
169 i += incr;
170 }
171 return 1;
172}
173#endif /* SQLITE_DEBUG */
drh75fd0542014-03-01 16:24:44 +0000174
drh4f26d6c2004-05-26 23:25:30 +0000175/*
danielk1977bfd6cce2004-06-18 04:24:54 +0000176** If pMem is an object with a valid string representation, this routine
177** ensures the internal encoding for the string representation is
178** 'desiredEnc', one of SQLITE_UTF8, SQLITE_UTF16LE or SQLITE_UTF16BE.
drh4f26d6c2004-05-26 23:25:30 +0000179**
danielk1977bfd6cce2004-06-18 04:24:54 +0000180** If pMem is not a string object, or the encoding of the string
181** representation is already stored using the requested encoding, then this
182** routine is a no-op.
drh4f26d6c2004-05-26 23:25:30 +0000183**
184** SQLITE_OK is returned if the conversion is successful (or not required).
185** SQLITE_NOMEM may be returned if a malloc() fails during conversion
186** between formats.
187*/
drhb21c8cd2007-08-21 19:33:56 +0000188int sqlite3VdbeChangeEncoding(Mem *pMem, int desiredEnc){
mistachkinef593f22013-03-07 06:42:53 +0000189#ifndef SQLITE_OMIT_UTF16
danielk19772c336542005-01-13 02:14:23 +0000190 int rc;
mistachkinef593f22013-03-07 06:42:53 +0000191#endif
drh9d67afc2018-08-29 20:24:03 +0000192 assert( !sqlite3VdbeMemIsRowSet(pMem) );
drhb27b7f52008-12-10 18:03:45 +0000193 assert( desiredEnc==SQLITE_UTF8 || desiredEnc==SQLITE_UTF16LE
194 || desiredEnc==SQLITE_UTF16BE );
drhc07df4c2017-09-21 01:04:30 +0000195 if( !(pMem->flags&MEM_Str) || pMem->enc==desiredEnc ){
drh4f26d6c2004-05-26 23:25:30 +0000196 return SQLITE_OK;
197 }
drhb21c8cd2007-08-21 19:33:56 +0000198 assert( pMem->db==0 || sqlite3_mutex_held(pMem->db->mutex) );
drh6c626082004-11-14 21:56:29 +0000199#ifdef SQLITE_OMIT_UTF16
200 return SQLITE_ERROR;
201#else
danielk197700fd9572005-12-07 06:27:43 +0000202
203 /* MemTranslate() may return SQLITE_OK or SQLITE_NOMEM. If NOMEM is returned,
204 ** then the encoding of the value may not have changed.
205 */
drhb27b7f52008-12-10 18:03:45 +0000206 rc = sqlite3VdbeMemTranslate(pMem, (u8)desiredEnc);
danielk197700fd9572005-12-07 06:27:43 +0000207 assert(rc==SQLITE_OK || rc==SQLITE_NOMEM);
208 assert(rc==SQLITE_OK || pMem->enc!=desiredEnc);
209 assert(rc==SQLITE_NOMEM || pMem->enc==desiredEnc);
danielk19772c336542005-01-13 02:14:23 +0000210 return rc;
drh6c626082004-11-14 21:56:29 +0000211#endif
drh4f26d6c2004-05-26 23:25:30 +0000212}
213
drheb2e1762004-05-27 01:53:56 +0000214/*
drh6ff74272019-02-08 15:59:20 +0000215** Make sure pMem->z points to a writable allocation of at least n bytes.
danielk1977a7a8e142008-02-13 18:25:27 +0000216**
drhb0e77042013-12-10 19:49:00 +0000217** If the bPreserve argument is true, then copy of the content of
218** pMem->z into the new allocation. pMem must be either a string or
219** blob if bPreserve is true. If bPreserve is false, any prior content
220** in pMem->z is discarded.
danielk1977a7a8e142008-02-13 18:25:27 +0000221*/
drh322f2852014-09-19 00:43:39 +0000222SQLITE_NOINLINE int sqlite3VdbeMemGrow(Mem *pMem, int n, int bPreserve){
drh75fd0542014-03-01 16:24:44 +0000223 assert( sqlite3VdbeCheckMemInvariants(pMem) );
drh9d67afc2018-08-29 20:24:03 +0000224 assert( !sqlite3VdbeMemIsRowSet(pMem) );
drh575fad62016-02-05 13:38:36 +0000225 testcase( pMem->db==0 );
danielk1977a7a8e142008-02-13 18:25:27 +0000226
drhb0e77042013-12-10 19:49:00 +0000227 /* If the bPreserve flag is set to true, then the memory cell must already
dan2b9ee772012-03-31 09:59:44 +0000228 ** contain a valid string or blob value. */
drh0364f222019-04-10 13:24:35 +0000229 assert( bPreserve==0 || pMem->flags&(MEM_Blob|MEM_Str) );
drhb0e77042013-12-10 19:49:00 +0000230 testcase( bPreserve && pMem->z==0 );
dan2b9ee772012-03-31 09:59:44 +0000231
drh17bcb102014-09-18 21:25:33 +0000232 assert( pMem->szMalloc==0
233 || pMem->szMalloc==sqlite3DbMallocSize(pMem->db, pMem->zMalloc) );
drh762dffa2017-09-20 18:47:51 +0000234 if( pMem->szMalloc>0 && bPreserve && pMem->z==pMem->zMalloc ){
drh97b02502019-09-17 03:16:29 +0000235 if( pMem->db ){
236 pMem->z = pMem->zMalloc = sqlite3DbReallocOrFree(pMem->db, pMem->z, n);
237 }else{
238 pMem->zMalloc = sqlite3Realloc(pMem->z, n);
239 if( pMem->zMalloc==0 ) sqlite3_free(pMem->z);
240 pMem->z = pMem->zMalloc;
241 }
drh4c6463c2017-04-10 20:27:54 +0000242 bPreserve = 0;
243 }else{
244 if( pMem->szMalloc>0 ) sqlite3DbFreeNN(pMem->db, pMem->zMalloc);
245 pMem->zMalloc = sqlite3DbMallocRaw(pMem->db, n);
246 }
247 if( pMem->zMalloc==0 ){
248 sqlite3VdbeMemSetNull(pMem);
249 pMem->z = 0;
250 pMem->szMalloc = 0;
251 return SQLITE_NOMEM_BKPT;
252 }else{
253 pMem->szMalloc = sqlite3DbMallocSize(pMem->db, pMem->zMalloc);
danielk1977a7a8e142008-02-13 18:25:27 +0000254 }
danielk19775f096132008-03-28 15:44:09 +0000255
drh762dffa2017-09-20 18:47:51 +0000256 if( bPreserve && pMem->z ){
257 assert( pMem->z!=pMem->zMalloc );
danielk19775f096132008-03-28 15:44:09 +0000258 memcpy(pMem->zMalloc, pMem->z, pMem->n);
259 }
drhc91b2fd2014-03-01 18:13:23 +0000260 if( (pMem->flags&MEM_Dyn)!=0 ){
261 assert( pMem->xDel!=0 && pMem->xDel!=SQLITE_DYNAMIC );
danielk19775f096132008-03-28 15:44:09 +0000262 pMem->xDel((void *)(pMem->z));
263 }
264
265 pMem->z = pMem->zMalloc;
drhc91b2fd2014-03-01 18:13:23 +0000266 pMem->flags &= ~(MEM_Dyn|MEM_Ephem|MEM_Static);
drhb0e77042013-12-10 19:49:00 +0000267 return SQLITE_OK;
danielk1977a7a8e142008-02-13 18:25:27 +0000268}
269
270/*
drh322f2852014-09-19 00:43:39 +0000271** Change the pMem->zMalloc allocation to be at least szNew bytes.
272** If pMem->zMalloc already meets or exceeds the requested size, this
273** routine is a no-op.
274**
275** Any prior string or blob content in the pMem object may be discarded.
drha5476e92014-09-19 04:42:38 +0000276** The pMem->xDel destructor is called, if it exists. Though MEM_Str
drh169f0772019-05-02 21:36:26 +0000277** and MEM_Blob values may be discarded, MEM_Int, MEM_Real, MEM_IntReal,
278** and MEM_Null values are preserved.
drh322f2852014-09-19 00:43:39 +0000279**
280** Return SQLITE_OK on success or an error code (probably SQLITE_NOMEM)
281** if unable to complete the resizing.
282*/
283int sqlite3VdbeMemClearAndResize(Mem *pMem, int szNew){
danb4738dd2019-01-23 20:31:56 +0000284 assert( CORRUPT_DB || szNew>0 );
drh722246e2014-10-07 23:02:24 +0000285 assert( (pMem->flags & MEM_Dyn)==0 || pMem->szMalloc==0 );
drh1eda9f72014-09-19 22:30:49 +0000286 if( pMem->szMalloc<szNew ){
drh322f2852014-09-19 00:43:39 +0000287 return sqlite3VdbeMemGrow(pMem, szNew, 0);
288 }
drh1eda9f72014-09-19 22:30:49 +0000289 assert( (pMem->flags & MEM_Dyn)==0 );
drh322f2852014-09-19 00:43:39 +0000290 pMem->z = pMem->zMalloc;
drh83a1daf2019-05-01 18:59:33 +0000291 pMem->flags &= (MEM_Null|MEM_Int|MEM_Real|MEM_IntReal);
drh322f2852014-09-19 00:43:39 +0000292 return SQLITE_OK;
293}
294
295/*
drh97397a72017-09-20 17:49:12 +0000296** It is already known that pMem contains an unterminated string.
297** Add the zero terminator.
drh30d3b0c2019-05-03 19:34:41 +0000298**
299** Three bytes of zero are added. In this way, there is guaranteed
300** to be a double-zero byte at an even byte boundary in order to
301** terminate a UTF16 string, even if the initial size of the buffer
302** is an odd number of bytes.
drh97397a72017-09-20 17:49:12 +0000303*/
304static SQLITE_NOINLINE int vdbeMemAddTerminator(Mem *pMem){
drh30d3b0c2019-05-03 19:34:41 +0000305 if( sqlite3VdbeMemGrow(pMem, pMem->n+3, 1) ){
drh97397a72017-09-20 17:49:12 +0000306 return SQLITE_NOMEM_BKPT;
307 }
308 pMem->z[pMem->n] = 0;
309 pMem->z[pMem->n+1] = 0;
drh30d3b0c2019-05-03 19:34:41 +0000310 pMem->z[pMem->n+2] = 0;
drh97397a72017-09-20 17:49:12 +0000311 pMem->flags |= MEM_Term;
312 return SQLITE_OK;
313}
314
315/*
drh1eda9f72014-09-19 22:30:49 +0000316** Change pMem so that its MEM_Str or MEM_Blob value is stored in
317** MEM.zMalloc, where it can be safely written.
drheb2e1762004-05-27 01:53:56 +0000318**
319** Return SQLITE_OK on success or SQLITE_NOMEM if malloc fails.
320*/
drhdab898f2008-07-30 13:14:55 +0000321int sqlite3VdbeMemMakeWriteable(Mem *pMem){
drhb21c8cd2007-08-21 19:33:56 +0000322 assert( pMem->db==0 || sqlite3_mutex_held(pMem->db->mutex) );
drh9d67afc2018-08-29 20:24:03 +0000323 assert( !sqlite3VdbeMemIsRowSet(pMem) );
drh8aaf7bc2016-09-20 01:19:18 +0000324 if( (pMem->flags & (MEM_Str|MEM_Blob))!=0 ){
325 if( ExpandBlob(pMem) ) return SQLITE_NOMEM;
326 if( pMem->szMalloc==0 || pMem->z!=pMem->zMalloc ){
drh97397a72017-09-20 17:49:12 +0000327 int rc = vdbeMemAddTerminator(pMem);
328 if( rc ) return rc;
danielk1977a7a8e142008-02-13 18:25:27 +0000329 }
drheb2e1762004-05-27 01:53:56 +0000330 }
drhbd6789e2015-04-28 14:00:02 +0000331 pMem->flags &= ~MEM_Ephem;
332#ifdef SQLITE_DEBUG
333 pMem->pScopyFrom = 0;
334#endif
danielk1977a7a8e142008-02-13 18:25:27 +0000335
drhf4479502004-05-27 03:12:53 +0000336 return SQLITE_OK;
drheb2e1762004-05-27 01:53:56 +0000337}
338
339/*
drhfdf972a2007-05-02 13:30:27 +0000340** If the given Mem* has a zero-filled tail, turn it into an ordinary
drhb026e052007-05-02 01:34:31 +0000341** blob stored in dynamically allocated space.
342*/
danielk1977246ad312007-05-16 14:23:00 +0000343#ifndef SQLITE_OMIT_INCRBLOB
drhb21c8cd2007-08-21 19:33:56 +0000344int sqlite3VdbeMemExpandBlob(Mem *pMem){
drhff535a22016-09-20 01:46:15 +0000345 int nByte;
346 assert( pMem->flags & MEM_Zero );
drh7d683392019-04-07 18:04:57 +0000347 assert( (pMem->flags&MEM_Blob)!=0 || MemNullNochng(pMem) );
drh427db2d2019-04-07 18:21:12 +0000348 testcase( sqlite3_value_nochange(pMem) );
drh9d67afc2018-08-29 20:24:03 +0000349 assert( !sqlite3VdbeMemIsRowSet(pMem) );
drhff535a22016-09-20 01:46:15 +0000350 assert( pMem->db==0 || sqlite3_mutex_held(pMem->db->mutex) );
danielk1977a7a8e142008-02-13 18:25:27 +0000351
drhff535a22016-09-20 01:46:15 +0000352 /* Set nByte to the number of bytes required to store the expanded blob. */
353 nByte = pMem->n + pMem->u.nZero;
354 if( nByte<=0 ){
drh0364f222019-04-10 13:24:35 +0000355 if( (pMem->flags & MEM_Blob)==0 ) return SQLITE_OK;
drhff535a22016-09-20 01:46:15 +0000356 nByte = 1;
drhb026e052007-05-02 01:34:31 +0000357 }
drhff535a22016-09-20 01:46:15 +0000358 if( sqlite3VdbeMemGrow(pMem, nByte, 1) ){
359 return SQLITE_NOMEM_BKPT;
360 }
361
362 memset(&pMem->z[pMem->n], 0, pMem->u.nZero);
363 pMem->n += pMem->u.nZero;
364 pMem->flags &= ~(MEM_Zero|MEM_Term);
drhb026e052007-05-02 01:34:31 +0000365 return SQLITE_OK;
366}
danielk1977246ad312007-05-16 14:23:00 +0000367#endif
drhb026e052007-05-02 01:34:31 +0000368
drhb026e052007-05-02 01:34:31 +0000369/*
drhb63388b2014-08-27 00:50:11 +0000370** Make sure the given Mem is \u0000 terminated.
371*/
372int sqlite3VdbeMemNulTerminate(Mem *pMem){
373 assert( pMem->db==0 || sqlite3_mutex_held(pMem->db->mutex) );
374 testcase( (pMem->flags & (MEM_Term|MEM_Str))==(MEM_Term|MEM_Str) );
375 testcase( (pMem->flags & (MEM_Term|MEM_Str))==0 );
376 if( (pMem->flags & (MEM_Term|MEM_Str))!=MEM_Str ){
377 return SQLITE_OK; /* Nothing to do */
378 }else{
379 return vdbeMemAddTerminator(pMem);
380 }
381}
382
383/*
drh30d3b0c2019-05-03 19:34:41 +0000384** Add MEM_Str to the set of representations for the given Mem. This
385** routine is only called if pMem is a number of some kind, not a NULL
386** or a BLOB.
drheb2e1762004-05-27 01:53:56 +0000387**
drh169f0772019-05-02 21:36:26 +0000388** Existing representations MEM_Int, MEM_Real, or MEM_IntReal are invalidated
389** if bForce is true but are retained if bForce is false.
danielk197713073932004-06-30 11:54:06 +0000390**
391** A MEM_Null value will never be passed to this function. This function is
392** used for converting values to text for returning to the user (i.e. via
393** sqlite3_value_text()), or for ensuring that values to be used as btree
394** keys are strings. In the former case a NULL pointer is returned the
peter.d.reid60ec9142014-09-06 16:39:46 +0000395** user and the latter is an internal programming error.
drheb2e1762004-05-27 01:53:56 +0000396*/
drhbd9507c2014-08-23 17:21:37 +0000397int sqlite3VdbeMemStringify(Mem *pMem, u8 enc, u8 bForce){
danielk1977a7a8e142008-02-13 18:25:27 +0000398 const int nByte = 32;
drheb2e1762004-05-27 01:53:56 +0000399
drhb21c8cd2007-08-21 19:33:56 +0000400 assert( pMem->db==0 || sqlite3_mutex_held(pMem->db->mutex) );
drh83a1daf2019-05-01 18:59:33 +0000401 assert( !(pMem->flags&MEM_Zero) );
402 assert( !(pMem->flags&(MEM_Str|MEM_Blob)) );
drh169f0772019-05-02 21:36:26 +0000403 assert( pMem->flags&(MEM_Int|MEM_Real|MEM_IntReal) );
drh9d67afc2018-08-29 20:24:03 +0000404 assert( !sqlite3VdbeMemIsRowSet(pMem) );
drhea598cb2009-04-05 12:22:08 +0000405 assert( EIGHT_BYTE_ALIGNMENT(pMem) );
drh3d4501e2008-12-04 20:40:10 +0000406
drheb2e1762004-05-27 01:53:56 +0000407
drh322f2852014-09-19 00:43:39 +0000408 if( sqlite3VdbeMemClearAndResize(pMem, nByte) ){
drh2a1df932016-09-30 17:46:44 +0000409 pMem->enc = 0;
mistachkinfad30392016-02-13 23:43:46 +0000410 return SQLITE_NOMEM_BKPT;
danielk1977a7a8e142008-02-13 18:25:27 +0000411 }
412
drh83a1daf2019-05-01 18:59:33 +0000413 vdbeMemRenderNum(nByte, pMem->z, pMem);
drh7301e772018-10-31 20:52:00 +0000414 assert( pMem->z!=0 );
415 pMem->n = sqlite3Strlen30NN(pMem->z);
danielk197713073932004-06-30 11:54:06 +0000416 pMem->enc = SQLITE_UTF8;
danielk1977a7a8e142008-02-13 18:25:27 +0000417 pMem->flags |= MEM_Str|MEM_Term;
drh83a1daf2019-05-01 18:59:33 +0000418 if( bForce ) pMem->flags &= ~(MEM_Int|MEM_Real|MEM_IntReal);
drhb21c8cd2007-08-21 19:33:56 +0000419 sqlite3VdbeChangeEncoding(pMem, enc);
drhbd9507c2014-08-23 17:21:37 +0000420 return SQLITE_OK;
drheb2e1762004-05-27 01:53:56 +0000421}
422
423/*
drhabfcea22005-09-06 20:36:48 +0000424** Memory cell pMem contains the context of an aggregate function.
425** This routine calls the finalize method for that function. The
426** result of the aggregate is stored back into pMem.
drh90669c12006-01-20 15:45:36 +0000427**
428** Return SQLITE_ERROR if the finalizer reports an error. SQLITE_OK
429** otherwise.
drhabfcea22005-09-06 20:36:48 +0000430*/
drh90669c12006-01-20 15:45:36 +0000431int sqlite3VdbeMemFinalize(Mem *pMem, FuncDef *pFunc){
drh9d9c41e2017-10-31 03:40:15 +0000432 sqlite3_context ctx;
433 Mem t;
434 assert( pFunc!=0 );
435 assert( pFunc->xFinalize!=0 );
436 assert( (pMem->flags & MEM_Null)!=0 || pFunc==pMem->u.pDef );
437 assert( pMem->db==0 || sqlite3_mutex_held(pMem->db->mutex) );
438 memset(&ctx, 0, sizeof(ctx));
439 memset(&t, 0, sizeof(t));
440 t.flags = MEM_Null;
441 t.db = pMem->db;
442 ctx.pOut = &t;
443 ctx.pMem = pMem;
444 ctx.pFunc = pFunc;
445 pFunc->xFinalize(&ctx); /* IMP: R-24505-23230 */
446 assert( (pMem->flags & MEM_Dyn)==0 );
447 if( pMem->szMalloc>0 ) sqlite3DbFreeNN(pMem->db, pMem->zMalloc);
448 memcpy(pMem, &t, sizeof(t));
449 return ctx.isError;
drhabfcea22005-09-06 20:36:48 +0000450}
451
dan9a947222018-06-14 19:06:36 +0000452/*
453** Memory cell pAccum contains the context of an aggregate function.
454** This routine calls the xValue method for that function and stores
455** the results in memory cell pMem.
456**
457** SQLITE_ERROR is returned if xValue() reports an error. SQLITE_OK
458** otherwise.
459*/
dan67a9b8e2018-06-22 20:51:35 +0000460#ifndef SQLITE_OMIT_WINDOWFUNC
dan86fb6e12018-05-16 20:58:07 +0000461int sqlite3VdbeMemAggValue(Mem *pAccum, Mem *pOut, FuncDef *pFunc){
462 sqlite3_context ctx;
dan86fb6e12018-05-16 20:58:07 +0000463 assert( pFunc!=0 );
464 assert( pFunc->xValue!=0 );
465 assert( (pAccum->flags & MEM_Null)!=0 || pFunc==pAccum->u.pDef );
466 assert( pAccum->db==0 || sqlite3_mutex_held(pAccum->db->mutex) );
467 memset(&ctx, 0, sizeof(ctx));
drh8f26da62018-07-05 21:22:57 +0000468 sqlite3VdbeMemSetNull(pOut);
dan86fb6e12018-05-16 20:58:07 +0000469 ctx.pOut = pOut;
470 ctx.pMem = pAccum;
471 ctx.pFunc = pFunc;
472 pFunc->xValue(&ctx);
473 return ctx.isError;
474}
dan67a9b8e2018-06-22 20:51:35 +0000475#endif /* SQLITE_OMIT_WINDOWFUNC */
dan9a947222018-06-14 19:06:36 +0000476
drhabfcea22005-09-06 20:36:48 +0000477/*
drh8740a602014-09-16 20:05:21 +0000478** If the memory cell contains a value that must be freed by
drh0725cab2014-09-17 14:52:46 +0000479** invoking the external callback in Mem.xDel, then this routine
480** will free that value. It also sets Mem.flags to MEM_Null.
drh12b7c7d2014-08-25 11:20:27 +0000481**
drh0725cab2014-09-17 14:52:46 +0000482** This is a helper routine for sqlite3VdbeMemSetNull() and
483** for sqlite3VdbeMemRelease(). Use those other routines as the
484** entry point for releasing Mem resources.
danielk19775f096132008-03-28 15:44:09 +0000485*/
drh0725cab2014-09-17 14:52:46 +0000486static SQLITE_NOINLINE void vdbeMemClearExternAndSetNull(Mem *p){
danielk19775f096132008-03-28 15:44:09 +0000487 assert( p->db==0 || sqlite3_mutex_held(p->db->mutex) );
drh0725cab2014-09-17 14:52:46 +0000488 assert( VdbeMemDynamic(p) );
drh2d36eb42011-08-29 02:49:41 +0000489 if( p->flags&MEM_Agg ){
490 sqlite3VdbeMemFinalize(p, p->u.pDef);
491 assert( (p->flags & MEM_Agg)==0 );
drh0725cab2014-09-17 14:52:46 +0000492 testcase( p->flags & MEM_Dyn );
493 }
494 if( p->flags&MEM_Dyn ){
drhc91b2fd2014-03-01 18:13:23 +0000495 assert( p->xDel!=SQLITE_DYNAMIC && p->xDel!=0 );
drh2d36eb42011-08-29 02:49:41 +0000496 p->xDel((void *)p->z);
danielk19775f096132008-03-28 15:44:09 +0000497 }
drh6b478bc2014-09-16 21:54:11 +0000498 p->flags = MEM_Null;
danielk19775f096132008-03-28 15:44:09 +0000499}
500
501/*
drh12b7c7d2014-08-25 11:20:27 +0000502** Release memory held by the Mem p, both external memory cleared
503** by p->xDel and memory in p->zMalloc.
504**
505** This is a helper routine invoked by sqlite3VdbeMemRelease() in
drh0725cab2014-09-17 14:52:46 +0000506** the unusual case where there really is memory in p that needs
507** to be freed.
drh12b7c7d2014-08-25 11:20:27 +0000508*/
drh0725cab2014-09-17 14:52:46 +0000509static SQLITE_NOINLINE void vdbeMemClear(Mem *p){
drh12b7c7d2014-08-25 11:20:27 +0000510 if( VdbeMemDynamic(p) ){
drh0725cab2014-09-17 14:52:46 +0000511 vdbeMemClearExternAndSetNull(p);
drh12b7c7d2014-08-25 11:20:27 +0000512 }
drh17bcb102014-09-18 21:25:33 +0000513 if( p->szMalloc ){
drhdbd6a7d2017-04-05 12:39:49 +0000514 sqlite3DbFreeNN(p->db, p->zMalloc);
drh17bcb102014-09-18 21:25:33 +0000515 p->szMalloc = 0;
drh12b7c7d2014-08-25 11:20:27 +0000516 }
517 p->z = 0;
518}
519
520/*
drh0725cab2014-09-17 14:52:46 +0000521** Release any memory resources held by the Mem. Both the memory that is
522** free by Mem.xDel and the Mem.zMalloc allocation are freed.
drh8740a602014-09-16 20:05:21 +0000523**
drh0725cab2014-09-17 14:52:46 +0000524** Use this routine prior to clean up prior to abandoning a Mem, or to
525** reset a Mem back to its minimum memory utilization.
526**
527** Use sqlite3VdbeMemSetNull() to release just the Mem.xDel space
528** prior to inserting new content into the Mem.
drhf4479502004-05-27 03:12:53 +0000529*/
danielk1977d8123362004-06-12 09:25:12 +0000530void sqlite3VdbeMemRelease(Mem *p){
drh75fd0542014-03-01 16:24:44 +0000531 assert( sqlite3VdbeCheckMemInvariants(p) );
drh17bcb102014-09-18 21:25:33 +0000532 if( VdbeMemDynamic(p) || p->szMalloc ){
drh0725cab2014-09-17 14:52:46 +0000533 vdbeMemClear(p);
drh7250c542013-12-09 03:07:21 +0000534 }
drhf4479502004-05-27 03:12:53 +0000535}
536
537/*
drhd8c303f2008-01-11 15:27:03 +0000538** Convert a 64-bit IEEE double into a 64-bit signed integer.
drhde1a8b82013-11-26 15:45:02 +0000539** If the double is out of range of a 64-bit signed integer then
540** return the closest available 64-bit signed integer.
drhd8c303f2008-01-11 15:27:03 +0000541*/
drhb808d772017-04-01 11:59:36 +0000542static SQLITE_NOINLINE i64 doubleToInt64(double r){
drh52d14522010-01-13 15:15:40 +0000543#ifdef SQLITE_OMIT_FLOATING_POINT
544 /* When floating-point is omitted, double and int64 are the same thing */
545 return r;
546#else
drhd8c303f2008-01-11 15:27:03 +0000547 /*
548 ** Many compilers we encounter do not define constants for the
549 ** minimum and maximum 64-bit integers, or they define them
550 ** inconsistently. And many do not understand the "LL" notation.
551 ** So we define our own static constants here using nothing
552 ** larger than a 32-bit integer constant.
553 */
drh0f050352008-05-09 18:03:13 +0000554 static const i64 maxInt = LARGEST_INT64;
555 static const i64 minInt = SMALLEST_INT64;
drhd8c303f2008-01-11 15:27:03 +0000556
drhde1a8b82013-11-26 15:45:02 +0000557 if( r<=(double)minInt ){
drhd8c303f2008-01-11 15:27:03 +0000558 return minInt;
drhde1a8b82013-11-26 15:45:02 +0000559 }else if( r>=(double)maxInt ){
560 return maxInt;
drhd8c303f2008-01-11 15:27:03 +0000561 }else{
562 return (i64)r;
563 }
drh52d14522010-01-13 15:15:40 +0000564#endif
drhd8c303f2008-01-11 15:27:03 +0000565}
566
567/*
drh6a6124e2004-06-27 01:56:33 +0000568** Return some kind of integer value which is the best we can do
569** at representing the value that *pMem describes as an integer.
570** If pMem is an integer, then the value is exact. If pMem is
571** a floating-point then the value returned is the integer part.
572** If pMem is a string or blob, then we make an attempt to convert
peter.d.reid60ec9142014-09-06 16:39:46 +0000573** it into an integer and return that. If pMem represents an
drh347a7cb2009-03-23 21:37:04 +0000574** an SQL-NULL value, return 0.
drh6a6124e2004-06-27 01:56:33 +0000575**
drh347a7cb2009-03-23 21:37:04 +0000576** If pMem represents a string value, its encoding might be changed.
drheb2e1762004-05-27 01:53:56 +0000577*/
drhb808d772017-04-01 11:59:36 +0000578static SQLITE_NOINLINE i64 memIntValue(Mem *pMem){
579 i64 value = 0;
580 sqlite3Atoi64(pMem->z, &value, pMem->n, pMem->enc);
581 return value;
582}
drh6a6124e2004-06-27 01:56:33 +0000583i64 sqlite3VdbeIntValue(Mem *pMem){
drhb21c8cd2007-08-21 19:33:56 +0000584 int flags;
585 assert( pMem->db==0 || sqlite3_mutex_held(pMem->db->mutex) );
drhea598cb2009-04-05 12:22:08 +0000586 assert( EIGHT_BYTE_ALIGNMENT(pMem) );
drhb21c8cd2007-08-21 19:33:56 +0000587 flags = pMem->flags;
drh169f0772019-05-02 21:36:26 +0000588 if( flags & (MEM_Int|MEM_IntReal) ){
drh3242c692019-05-04 01:29:13 +0000589 testcase( flags & MEM_IntReal );
drh3c024d62007-03-30 11:23:45 +0000590 return pMem->u.i;
drh6fec0762004-05-30 01:38:43 +0000591 }else if( flags & MEM_Real ){
drh74eaba42014-09-18 17:52:15 +0000592 return doubleToInt64(pMem->u.r);
drh22e6f672019-12-03 02:51:50 +0000593 }else if( (flags & (MEM_Str|MEM_Blob))!=0 && pMem->z!=0 ){
drhb808d772017-04-01 11:59:36 +0000594 return memIntValue(pMem);
drheb2e1762004-05-27 01:53:56 +0000595 }else{
drh6a6124e2004-06-27 01:56:33 +0000596 return 0;
drheb2e1762004-05-27 01:53:56 +0000597 }
drh6a6124e2004-06-27 01:56:33 +0000598}
599
600/*
drh6a6124e2004-06-27 01:56:33 +0000601** Return the best representation of pMem that we can get into a
602** double. If pMem is already a double or an integer, return its
603** value. If it is a string or blob, try to convert it to a double.
604** If it is a NULL, return 0.0.
drheb2e1762004-05-27 01:53:56 +0000605*/
drhb808d772017-04-01 11:59:36 +0000606static SQLITE_NOINLINE double memRealValue(Mem *pMem){
607 /* (double)0 In case of SQLITE_OMIT_FLOATING_POINT... */
608 double val = (double)0;
609 sqlite3AtoF(pMem->z, &val, pMem->n, pMem->enc);
610 return val;
611}
drh6a6124e2004-06-27 01:56:33 +0000612double sqlite3VdbeRealValue(Mem *pMem){
drhb21c8cd2007-08-21 19:33:56 +0000613 assert( pMem->db==0 || sqlite3_mutex_held(pMem->db->mutex) );
drhea598cb2009-04-05 12:22:08 +0000614 assert( EIGHT_BYTE_ALIGNMENT(pMem) );
danielk1977f93bbbe2004-05-27 10:30:52 +0000615 if( pMem->flags & MEM_Real ){
drh74eaba42014-09-18 17:52:15 +0000616 return pMem->u.r;
drh169f0772019-05-02 21:36:26 +0000617 }else if( pMem->flags & (MEM_Int|MEM_IntReal) ){
drh3242c692019-05-04 01:29:13 +0000618 testcase( pMem->flags & MEM_IntReal );
drh3c024d62007-03-30 11:23:45 +0000619 return (double)pMem->u.i;
drheb2e1762004-05-27 01:53:56 +0000620 }else if( pMem->flags & (MEM_Str|MEM_Blob) ){
drhb808d772017-04-01 11:59:36 +0000621 return memRealValue(pMem);
drheb2e1762004-05-27 01:53:56 +0000622 }else{
shanefbd60f82009-02-04 03:59:25 +0000623 /* (double)0 In case of SQLITE_OMIT_FLOATING_POINT... */
624 return (double)0;
drheb2e1762004-05-27 01:53:56 +0000625 }
drh6a6124e2004-06-27 01:56:33 +0000626}
627
628/*
drh1fcfa722018-02-26 15:27:31 +0000629** Return 1 if pMem represents true, and return 0 if pMem represents false.
630** Return the value ifNull if pMem is NULL.
631*/
632int sqlite3VdbeBooleanValue(Mem *pMem, int ifNull){
drh3242c692019-05-04 01:29:13 +0000633 testcase( pMem->flags & MEM_IntReal );
drh169f0772019-05-02 21:36:26 +0000634 if( pMem->flags & (MEM_Int|MEM_IntReal) ) return pMem->u.i!=0;
drh1fcfa722018-02-26 15:27:31 +0000635 if( pMem->flags & MEM_Null ) return ifNull;
636 return sqlite3VdbeRealValue(pMem)!=0.0;
637}
638
639/*
drh8df447f2005-11-01 15:48:24 +0000640** The MEM structure is already a MEM_Real. Try to also make it a
641** MEM_Int if we can.
642*/
643void sqlite3VdbeIntegerAffinity(Mem *pMem){
drh74eaba42014-09-18 17:52:15 +0000644 i64 ix;
drh8df447f2005-11-01 15:48:24 +0000645 assert( pMem->flags & MEM_Real );
drh9d67afc2018-08-29 20:24:03 +0000646 assert( !sqlite3VdbeMemIsRowSet(pMem) );
drhb21c8cd2007-08-21 19:33:56 +0000647 assert( pMem->db==0 || sqlite3_mutex_held(pMem->db->mutex) );
drhea598cb2009-04-05 12:22:08 +0000648 assert( EIGHT_BYTE_ALIGNMENT(pMem) );
drhefe3d652008-01-11 00:06:10 +0000649
drh74eaba42014-09-18 17:52:15 +0000650 ix = doubleToInt64(pMem->u.r);
drh94c3a2b2009-06-17 16:20:04 +0000651
652 /* Only mark the value as an integer if
653 **
654 ** (1) the round-trip conversion real->int->real is a no-op, and
655 ** (2) The integer is neither the largest nor the smallest
656 ** possible integer (ticket #3922)
657 **
drhe74871a2009-08-14 17:53:39 +0000658 ** The second and third terms in the following conditional enforces
659 ** the second condition under the assumption that addition overflow causes
drhde1a8b82013-11-26 15:45:02 +0000660 ** values to wrap around.
drh94c3a2b2009-06-17 16:20:04 +0000661 */
drh74eaba42014-09-18 17:52:15 +0000662 if( pMem->u.r==ix && ix>SMALLEST_INT64 && ix<LARGEST_INT64 ){
663 pMem->u.i = ix;
664 MemSetTypeFlag(pMem, MEM_Int);
drh8df447f2005-11-01 15:48:24 +0000665 }
666}
667
drh8a512562005-11-14 22:29:05 +0000668/*
669** Convert pMem to type integer. Invalidate any prior representations.
670*/
671int sqlite3VdbeMemIntegerify(Mem *pMem){
drhb21c8cd2007-08-21 19:33:56 +0000672 assert( pMem->db==0 || sqlite3_mutex_held(pMem->db->mutex) );
drh9d67afc2018-08-29 20:24:03 +0000673 assert( !sqlite3VdbeMemIsRowSet(pMem) );
drhea598cb2009-04-05 12:22:08 +0000674 assert( EIGHT_BYTE_ALIGNMENT(pMem) );
675
drh3c024d62007-03-30 11:23:45 +0000676 pMem->u.i = sqlite3VdbeIntValue(pMem);
drh3d4501e2008-12-04 20:40:10 +0000677 MemSetTypeFlag(pMem, MEM_Int);
drh8a512562005-11-14 22:29:05 +0000678 return SQLITE_OK;
679}
drh8df447f2005-11-01 15:48:24 +0000680
681/*
drh8a512562005-11-14 22:29:05 +0000682** Convert pMem so that it is of type MEM_Real.
683** Invalidate any prior representations.
drh6a6124e2004-06-27 01:56:33 +0000684*/
685int sqlite3VdbeMemRealify(Mem *pMem){
drhb21c8cd2007-08-21 19:33:56 +0000686 assert( pMem->db==0 || sqlite3_mutex_held(pMem->db->mutex) );
drhea598cb2009-04-05 12:22:08 +0000687 assert( EIGHT_BYTE_ALIGNMENT(pMem) );
688
drh74eaba42014-09-18 17:52:15 +0000689 pMem->u.r = sqlite3VdbeRealValue(pMem);
drh3d4501e2008-12-04 20:40:10 +0000690 MemSetTypeFlag(pMem, MEM_Real);
drh8a512562005-11-14 22:29:05 +0000691 return SQLITE_OK;
692}
693
drhd15046a2018-01-23 17:33:42 +0000694/* Compare a floating point value to an integer. Return true if the two
695** values are the same within the precision of the floating point value.
696**
drh13d04022019-06-12 20:51:38 +0000697** This function assumes that i was obtained by assignment from r1.
698**
drhd15046a2018-01-23 17:33:42 +0000699** For some versions of GCC on 32-bit machines, if you do the more obvious
700** comparison of "r1==(double)i" you sometimes get an answer of false even
701** though the r1 and (double)i values are bit-for-bit the same.
702*/
drh8a3884e2019-05-29 21:18:27 +0000703int sqlite3RealSameAsInt(double r1, sqlite3_int64 i){
drhd15046a2018-01-23 17:33:42 +0000704 double r2 = (double)i;
drh13d04022019-06-12 20:51:38 +0000705 return r1==0.0
706 || (memcmp(&r1, &r2, sizeof(r1))==0
drhea9b5642019-07-09 23:35:50 +0000707 && i >= -2251799813685248LL && i < 2251799813685248LL);
drhd15046a2018-01-23 17:33:42 +0000708}
709
drh8a512562005-11-14 22:29:05 +0000710/*
drh169f0772019-05-02 21:36:26 +0000711** Convert pMem so that it has type MEM_Real or MEM_Int.
drh8a512562005-11-14 22:29:05 +0000712** Invalidate any prior representations.
drh4b5db5a2010-01-21 01:53:07 +0000713**
714** Every effort is made to force the conversion, even if the input
715** is a string that does not look completely like a number. Convert
716** as much of the string as we can and ignore the rest.
drh8a512562005-11-14 22:29:05 +0000717*/
718int sqlite3VdbeMemNumerify(Mem *pMem){
drh3242c692019-05-04 01:29:13 +0000719 testcase( pMem->flags & MEM_Int );
720 testcase( pMem->flags & MEM_Real );
721 testcase( pMem->flags & MEM_IntReal );
722 testcase( pMem->flags & MEM_Null );
drh169f0772019-05-02 21:36:26 +0000723 if( (pMem->flags & (MEM_Int|MEM_Real|MEM_IntReal|MEM_Null))==0 ){
drh84d4f1a2017-09-20 10:47:10 +0000724 int rc;
drh9a278222019-06-07 22:26:08 +0000725 sqlite3_int64 ix;
drh93518622010-09-30 14:48:06 +0000726 assert( (pMem->flags & (MEM_Blob|MEM_Str))!=0 );
727 assert( pMem->db==0 || sqlite3_mutex_held(pMem->db->mutex) );
drh9a278222019-06-07 22:26:08 +0000728 rc = sqlite3AtoF(pMem->z, &pMem->u.r, pMem->n, pMem->enc);
drhc285ded2019-06-10 18:33:16 +0000729 if( ((rc==0 || rc==1) && sqlite3Atoi64(pMem->z, &ix, pMem->n, pMem->enc)<=1)
730 || sqlite3RealSameAsInt(pMem->u.r, (ix = (i64)pMem->u.r))
731 ){
drh9a278222019-06-07 22:26:08 +0000732 pMem->u.i = ix;
733 MemSetTypeFlag(pMem, MEM_Int);
734 }else{
735 MemSetTypeFlag(pMem, MEM_Real);
drh93518622010-09-30 14:48:06 +0000736 }
drhcd7b46d2007-05-16 11:55:56 +0000737 }
drh169f0772019-05-02 21:36:26 +0000738 assert( (pMem->flags & (MEM_Int|MEM_Real|MEM_IntReal|MEM_Null))!=0 );
drh27fe1c32016-09-09 20:23:59 +0000739 pMem->flags &= ~(MEM_Str|MEM_Blob|MEM_Zero);
drhf4479502004-05-27 03:12:53 +0000740 return SQLITE_OK;
drh4f26d6c2004-05-26 23:25:30 +0000741}
742
743/*
drh4169e432014-08-25 20:11:52 +0000744** Cast the datatype of the value in pMem according to the affinity
745** "aff". Casting is different from applying affinity in that a cast
746** is forced. In other words, the value is converted into the desired
747** affinity even if that results in loss of data. This routine is
748** used (for example) to implement the SQL "cast()" operator.
749*/
drh0af6ddd2019-12-23 03:37:46 +0000750int sqlite3VdbeMemCast(Mem *pMem, u8 aff, u8 encoding){
751 if( pMem->flags & MEM_Null ) return SQLITE_OK;
drh4169e432014-08-25 20:11:52 +0000752 switch( aff ){
drh05883a32015-06-02 15:32:08 +0000753 case SQLITE_AFF_BLOB: { /* Really a cast to BLOB */
drh4169e432014-08-25 20:11:52 +0000754 if( (pMem->flags & MEM_Blob)==0 ){
755 sqlite3ValueApplyAffinity(pMem, SQLITE_AFF_TEXT, encoding);
756 assert( pMem->flags & MEM_Str || pMem->db->mallocFailed );
drhda5c6242016-10-05 15:02:00 +0000757 if( pMem->flags & MEM_Str ) MemSetTypeFlag(pMem, MEM_Blob);
drh4169e432014-08-25 20:11:52 +0000758 }else{
759 pMem->flags &= ~(MEM_TypeMask&~MEM_Blob);
760 }
761 break;
762 }
763 case SQLITE_AFF_NUMERIC: {
764 sqlite3VdbeMemNumerify(pMem);
765 break;
766 }
767 case SQLITE_AFF_INTEGER: {
768 sqlite3VdbeMemIntegerify(pMem);
769 break;
770 }
771 case SQLITE_AFF_REAL: {
772 sqlite3VdbeMemRealify(pMem);
773 break;
774 }
775 default: {
776 assert( aff==SQLITE_AFF_TEXT );
777 assert( MEM_Str==(MEM_Blob>>3) );
778 pMem->flags |= (pMem->flags&MEM_Blob)>>3;
779 sqlite3ValueApplyAffinity(pMem, SQLITE_AFF_TEXT, encoding);
780 assert( pMem->flags & MEM_Str || pMem->db->mallocFailed );
drh83a1daf2019-05-01 18:59:33 +0000781 pMem->flags &= ~(MEM_Int|MEM_Real|MEM_IntReal|MEM_Blob|MEM_Zero);
drh0af6ddd2019-12-23 03:37:46 +0000782 return sqlite3VdbeChangeEncoding(pMem, encoding);
drh4169e432014-08-25 20:11:52 +0000783 }
784 }
drh0af6ddd2019-12-23 03:37:46 +0000785 return SQLITE_OK;
drh4169e432014-08-25 20:11:52 +0000786}
787
drhd3b74202014-09-17 16:41:15 +0000788/*
789** Initialize bulk memory to be a consistent Mem object.
790**
791** The minimum amount of initialization feasible is performed.
792*/
793void sqlite3VdbeMemInit(Mem *pMem, sqlite3 *db, u16 flags){
794 assert( (flags & ~MEM_TypeMask)==0 );
795 pMem->flags = flags;
796 pMem->db = db;
drh17bcb102014-09-18 21:25:33 +0000797 pMem->szMalloc = 0;
drhd3b74202014-09-17 16:41:15 +0000798}
799
drh4169e432014-08-25 20:11:52 +0000800
801/*
drh4f26d6c2004-05-26 23:25:30 +0000802** Delete any previous value and set the value stored in *pMem to NULL.
drh0725cab2014-09-17 14:52:46 +0000803**
804** This routine calls the Mem.xDel destructor to dispose of values that
805** require the destructor. But it preserves the Mem.zMalloc memory allocation.
806** To free all resources, use sqlite3VdbeMemRelease(), which both calls this
807** routine to invoke the destructor and deallocates Mem.zMalloc.
808**
809** Use this routine to reset the Mem prior to insert a new value.
810**
811** Use sqlite3VdbeMemRelease() to complete erase the Mem prior to abandoning it.
drh4f26d6c2004-05-26 23:25:30 +0000812*/
813void sqlite3VdbeMemSetNull(Mem *pMem){
drh6b478bc2014-09-16 21:54:11 +0000814 if( VdbeMemDynamic(pMem) ){
drh0725cab2014-09-17 14:52:46 +0000815 vdbeMemClearExternAndSetNull(pMem);
drh6b478bc2014-09-16 21:54:11 +0000816 }else{
817 pMem->flags = MEM_Null;
dan165921a2009-08-28 18:53:45 +0000818 }
drh4f26d6c2004-05-26 23:25:30 +0000819}
drha3cc0072013-12-13 16:23:55 +0000820void sqlite3ValueSetNull(sqlite3_value *p){
821 sqlite3VdbeMemSetNull((Mem*)p);
822}
drh4f26d6c2004-05-26 23:25:30 +0000823
824/*
drhb026e052007-05-02 01:34:31 +0000825** Delete any previous value and set the value to be a BLOB of length
826** n containing all zeros.
827*/
828void sqlite3VdbeMemSetZeroBlob(Mem *pMem, int n){
829 sqlite3VdbeMemRelease(pMem);
danielk1977a7a8e142008-02-13 18:25:27 +0000830 pMem->flags = MEM_Blob|MEM_Zero;
drhb026e052007-05-02 01:34:31 +0000831 pMem->n = 0;
drh98640a32007-06-07 19:08:32 +0000832 if( n<0 ) n = 0;
drh8df32842008-12-09 02:51:23 +0000833 pMem->u.nZero = n;
danielk1977def0fec2007-05-10 15:37:52 +0000834 pMem->enc = SQLITE_UTF8;
drh0725cab2014-09-17 14:52:46 +0000835 pMem->z = 0;
drhb026e052007-05-02 01:34:31 +0000836}
837
838/*
drh9bd038f2014-08-27 14:14:06 +0000839** The pMem is known to contain content that needs to be destroyed prior
840** to a value change. So invoke the destructor, then set the value to
841** a 64-bit integer.
842*/
843static SQLITE_NOINLINE void vdbeReleaseAndSetInt64(Mem *pMem, i64 val){
drh0725cab2014-09-17 14:52:46 +0000844 sqlite3VdbeMemSetNull(pMem);
drh9bd038f2014-08-27 14:14:06 +0000845 pMem->u.i = val;
846 pMem->flags = MEM_Int;
847}
848
849/*
drh4f26d6c2004-05-26 23:25:30 +0000850** Delete any previous value and set the value stored in *pMem to val,
851** manifest type INTEGER.
852*/
drheb2e1762004-05-27 01:53:56 +0000853void sqlite3VdbeMemSetInt64(Mem *pMem, i64 val){
drh9bd038f2014-08-27 14:14:06 +0000854 if( VdbeMemDynamic(pMem) ){
855 vdbeReleaseAndSetInt64(pMem, val);
856 }else{
857 pMem->u.i = val;
858 pMem->flags = MEM_Int;
859 }
drh4f26d6c2004-05-26 23:25:30 +0000860}
861
drha0024e62017-07-27 15:53:24 +0000862/* A no-op destructor */
drh92011842018-05-26 16:00:26 +0000863void sqlite3NoopDestructor(void *p){ UNUSED_PARAMETER(p); }
drha0024e62017-07-27 15:53:24 +0000864
drh3a96a5d2017-06-30 23:09:03 +0000865/*
866** Set the value stored in *pMem should already be a NULL.
867** Also store a pointer to go with it.
868*/
drh22930062017-07-27 03:48:02 +0000869void sqlite3VdbeMemSetPointer(
870 Mem *pMem,
871 void *pPtr,
872 const char *zPType,
873 void (*xDestructor)(void*)
874){
drh3a96a5d2017-06-30 23:09:03 +0000875 assert( pMem->flags==MEM_Null );
drha0024e62017-07-27 15:53:24 +0000876 pMem->u.zPType = zPType ? zPType : "";
drh22930062017-07-27 03:48:02 +0000877 pMem->z = pPtr;
drha0024e62017-07-27 15:53:24 +0000878 pMem->flags = MEM_Null|MEM_Dyn|MEM_Subtype|MEM_Term;
879 pMem->eSubtype = 'p';
880 pMem->xDel = xDestructor ? xDestructor : sqlite3NoopDestructor;
drh3a96a5d2017-06-30 23:09:03 +0000881}
882
drh7ec5ea92010-01-13 00:04:13 +0000883#ifndef SQLITE_OMIT_FLOATING_POINT
drh4f26d6c2004-05-26 23:25:30 +0000884/*
885** Delete any previous value and set the value stored in *pMem to val,
886** manifest type REAL.
887*/
drheb2e1762004-05-27 01:53:56 +0000888void sqlite3VdbeMemSetDouble(Mem *pMem, double val){
drh0725cab2014-09-17 14:52:46 +0000889 sqlite3VdbeMemSetNull(pMem);
890 if( !sqlite3IsNaN(val) ){
drh74eaba42014-09-18 17:52:15 +0000891 pMem->u.r = val;
drh53c14022007-05-10 17:23:11 +0000892 pMem->flags = MEM_Real;
drh53c14022007-05-10 17:23:11 +0000893 }
drh4f26d6c2004-05-26 23:25:30 +0000894}
drh7ec5ea92010-01-13 00:04:13 +0000895#endif
drh4f26d6c2004-05-26 23:25:30 +0000896
drh9d67afc2018-08-29 20:24:03 +0000897#ifdef SQLITE_DEBUG
898/*
899** Return true if the Mem holds a RowSet object. This routine is intended
900** for use inside of assert() statements.
901*/
902int sqlite3VdbeMemIsRowSet(const Mem *pMem){
903 return (pMem->flags&(MEM_Blob|MEM_Dyn))==(MEM_Blob|MEM_Dyn)
904 && pMem->xDel==sqlite3RowSetDelete;
905}
906#endif
907
drh4f26d6c2004-05-26 23:25:30 +0000908/*
drh3d4501e2008-12-04 20:40:10 +0000909** Delete any previous value and set the value of pMem to be an
910** empty boolean index.
drh9d67afc2018-08-29 20:24:03 +0000911**
912** Return SQLITE_OK on success and SQLITE_NOMEM if a memory allocation
913** error occurs.
drh3d4501e2008-12-04 20:40:10 +0000914*/
drh9d67afc2018-08-29 20:24:03 +0000915int sqlite3VdbeMemSetRowSet(Mem *pMem){
drh3d4501e2008-12-04 20:40:10 +0000916 sqlite3 *db = pMem->db;
drh9d67afc2018-08-29 20:24:03 +0000917 RowSet *p;
drh3d4501e2008-12-04 20:40:10 +0000918 assert( db!=0 );
drh9d67afc2018-08-29 20:24:03 +0000919 assert( !sqlite3VdbeMemIsRowSet(pMem) );
drh4c8555f2009-06-25 01:47:11 +0000920 sqlite3VdbeMemRelease(pMem);
drh9d67afc2018-08-29 20:24:03 +0000921 p = sqlite3RowSetInit(db);
922 if( p==0 ) return SQLITE_NOMEM;
923 pMem->z = (char*)p;
924 pMem->flags = MEM_Blob|MEM_Dyn;
925 pMem->xDel = sqlite3RowSetDelete;
926 return SQLITE_OK;
drh3d4501e2008-12-04 20:40:10 +0000927}
928
929/*
drh023ae032007-05-08 12:12:16 +0000930** Return true if the Mem object contains a TEXT or BLOB that is
931** too large - whose size exceeds SQLITE_MAX_LENGTH.
932*/
933int sqlite3VdbeMemTooBig(Mem *p){
drhfa4a4b92008-03-19 21:45:51 +0000934 assert( p->db!=0 );
drh023ae032007-05-08 12:12:16 +0000935 if( p->flags & (MEM_Str|MEM_Blob) ){
936 int n = p->n;
937 if( p->flags & MEM_Zero ){
drh8df32842008-12-09 02:51:23 +0000938 n += p->u.nZero;
drh023ae032007-05-08 12:12:16 +0000939 }
drhbb4957f2008-03-20 14:03:29 +0000940 return n>p->db->aLimit[SQLITE_LIMIT_LENGTH];
drh023ae032007-05-08 12:12:16 +0000941 }
942 return 0;
943}
944
drh2b4ded92010-09-27 21:09:31 +0000945#ifdef SQLITE_DEBUG
946/*
peter.d.reid60ec9142014-09-06 16:39:46 +0000947** This routine prepares a memory cell for modification by breaking
drh2b4ded92010-09-27 21:09:31 +0000948** its link to a shallow copy and by marking any current shallow
949** copies of this cell as invalid.
950**
drh52f11b82020-01-02 13:26:49 +0000951** This is used for testing and debugging only - to help ensure that shallow
952** copies (created by OP_SCopy) are not misused.
drh2b4ded92010-09-27 21:09:31 +0000953*/
drhe4c88c02012-01-04 12:57:45 +0000954void sqlite3VdbeMemAboutToChange(Vdbe *pVdbe, Mem *pMem){
drh2b4ded92010-09-27 21:09:31 +0000955 int i;
956 Mem *pX;
drh4cbd8472020-01-02 15:02:08 +0000957 for(i=1, pX=pVdbe->aMem+1; i<pVdbe->nMem; i++, pX++){
drh2b4ded92010-09-27 21:09:31 +0000958 if( pX->pScopyFrom==pMem ){
mistachkin65cdae02020-01-06 18:44:56 +0000959 u16 mFlags;
drh22e95fb2020-01-02 14:42:42 +0000960 if( pVdbe->db->flags & SQLITE_VdbeTrace ){
961 sqlite3DebugPrintf("Invalidate R[%d] due to change in R[%d]\n",
962 (int)(pX - pVdbe->aMem), (int)(pMem - pVdbe->aMem));
963 }
drhd346fe02020-03-03 20:04:29 +0000964 /* If pX is marked as a shallow copy of pMem, then try to verify that
drh8d7b2122018-06-11 13:10:45 +0000965 ** no significant changes have been made to pX since the OP_SCopy.
966 ** A significant change would indicated a missed call to this
967 ** function for pX. Minor changes, such as adding or removing a
968 ** dual type, are allowed, as long as the underlying value is the
969 ** same. */
mistachkin65cdae02020-01-06 18:44:56 +0000970 mFlags = pMem->flags & pX->flags & pX->mScopyFlags;
drh169f0772019-05-02 21:36:26 +0000971 assert( (mFlags&(MEM_Int|MEM_IntReal))==0 || pMem->u.i==pX->u.i );
drh8d7b2122018-06-11 13:10:45 +0000972
973 /* pMem is the register that is changing. But also mark pX as
974 ** undefined so that we can quickly detect the shallow-copy error */
975 pX->flags = MEM_Undefined;
drh2b4ded92010-09-27 21:09:31 +0000976 pX->pScopyFrom = 0;
977 }
978 }
979 pMem->pScopyFrom = 0;
980}
981#endif /* SQLITE_DEBUG */
982
drh023ae032007-05-08 12:12:16 +0000983/*
drhfebe1062004-08-28 18:17:48 +0000984** Make an shallow copy of pFrom into pTo. Prior contents of
drha05a7222008-01-19 03:35:58 +0000985** pTo are freed. The pFrom->z field is not duplicated. If
drhfebe1062004-08-28 18:17:48 +0000986** pFrom->z is used, then pTo->z points to the same thing as pFrom->z
987** and flags gets srcType (either MEM_Ephem or MEM_Static).
drh4f26d6c2004-05-26 23:25:30 +0000988*/
drh14e06742015-06-17 23:28:03 +0000989static SQLITE_NOINLINE void vdbeClrCopy(Mem *pTo, const Mem *pFrom, int eType){
990 vdbeMemClearExternAndSetNull(pTo);
991 assert( !VdbeMemDynamic(pTo) );
992 sqlite3VdbeMemShallowCopy(pTo, pFrom, eType);
993}
drhfebe1062004-08-28 18:17:48 +0000994void sqlite3VdbeMemShallowCopy(Mem *pTo, const Mem *pFrom, int srcType){
drh9d67afc2018-08-29 20:24:03 +0000995 assert( !sqlite3VdbeMemIsRowSet(pFrom) );
drh035e5632014-09-16 14:16:31 +0000996 assert( pTo->db==pFrom->db );
drh14e06742015-06-17 23:28:03 +0000997 if( VdbeMemDynamic(pTo) ){ vdbeClrCopy(pTo,pFrom,srcType); return; }
danielk19775f096132008-03-28 15:44:09 +0000998 memcpy(pTo, pFrom, MEMCELLSIZE);
dan5fea9072010-03-05 18:46:12 +0000999 if( (pFrom->flags&MEM_Static)==0 ){
danielk1977a7a8e142008-02-13 18:25:27 +00001000 pTo->flags &= ~(MEM_Dyn|MEM_Static|MEM_Ephem);
drhfebe1062004-08-28 18:17:48 +00001001 assert( srcType==MEM_Ephem || srcType==MEM_Static );
1002 pTo->flags |= srcType;
1003 }
1004}
1005
1006/*
1007** Make a full copy of pFrom into pTo. Prior contents of pTo are
1008** freed before the copy is made.
1009*/
drhb21c8cd2007-08-21 19:33:56 +00001010int sqlite3VdbeMemCopy(Mem *pTo, const Mem *pFrom){
danielk1977a7a8e142008-02-13 18:25:27 +00001011 int rc = SQLITE_OK;
danielk1977a7a8e142008-02-13 18:25:27 +00001012
drh9d67afc2018-08-29 20:24:03 +00001013 assert( !sqlite3VdbeMemIsRowSet(pFrom) );
drh0725cab2014-09-17 14:52:46 +00001014 if( VdbeMemDynamic(pTo) ) vdbeMemClearExternAndSetNull(pTo);
danielk19775f096132008-03-28 15:44:09 +00001015 memcpy(pTo, pFrom, MEMCELLSIZE);
1016 pTo->flags &= ~MEM_Dyn;
danielk19775f096132008-03-28 15:44:09 +00001017 if( pTo->flags&(MEM_Str|MEM_Blob) ){
1018 if( 0==(pFrom->flags&MEM_Static) ){
1019 pTo->flags |= MEM_Ephem;
1020 rc = sqlite3VdbeMemMakeWriteable(pTo);
danielk19779172fd82008-02-14 15:31:52 +00001021 }
danielk1977a7a8e142008-02-13 18:25:27 +00001022 }
1023
drh71c697e2004-08-08 23:39:19 +00001024 return rc;
drh4f26d6c2004-05-26 23:25:30 +00001025}
1026
drheb2e1762004-05-27 01:53:56 +00001027/*
danielk1977369f27e2004-06-15 11:40:04 +00001028** Transfer the contents of pFrom to pTo. Any existing value in pTo is
drhfebe1062004-08-28 18:17:48 +00001029** freed. If pFrom contains ephemeral data, a copy is made.
1030**
drh643167f2008-01-22 21:30:53 +00001031** pFrom contains an SQL NULL when this routine returns.
danielk1977369f27e2004-06-15 11:40:04 +00001032*/
drh643167f2008-01-22 21:30:53 +00001033void sqlite3VdbeMemMove(Mem *pTo, Mem *pFrom){
drhb21c8cd2007-08-21 19:33:56 +00001034 assert( pFrom->db==0 || sqlite3_mutex_held(pFrom->db->mutex) );
1035 assert( pTo->db==0 || sqlite3_mutex_held(pTo->db->mutex) );
1036 assert( pFrom->db==0 || pTo->db==0 || pFrom->db==pTo->db );
danielk19775f096132008-03-28 15:44:09 +00001037
1038 sqlite3VdbeMemRelease(pTo);
danielk197713073932004-06-30 11:54:06 +00001039 memcpy(pTo, pFrom, sizeof(Mem));
danielk197713073932004-06-30 11:54:06 +00001040 pFrom->flags = MEM_Null;
drh17bcb102014-09-18 21:25:33 +00001041 pFrom->szMalloc = 0;
danielk1977369f27e2004-06-15 11:40:04 +00001042}
1043
1044/*
drheb2e1762004-05-27 01:53:56 +00001045** Change the value of a Mem to be a string or a BLOB.
danielk1977a7a8e142008-02-13 18:25:27 +00001046**
1047** The memory management strategy depends on the value of the xDel
1048** parameter. If the value passed is SQLITE_TRANSIENT, then the
1049** string is copied into a (possibly existing) buffer managed by the
1050** Mem structure. Otherwise, any existing buffer is freed and the
1051** pointer copied.
drh9a65f2c2009-06-22 19:05:40 +00001052**
1053** If the string is too large (if it exceeds the SQLITE_LIMIT_LENGTH
1054** size limit) then no memory allocation occurs. If the string can be
1055** stored without allocating memory, then it is. If a memory allocation
1056** is required to store the string, then value of pMem is unchanged. In
1057** either case, SQLITE_TOOBIG is returned.
drheb2e1762004-05-27 01:53:56 +00001058*/
drh4f26d6c2004-05-26 23:25:30 +00001059int sqlite3VdbeMemSetStr(
1060 Mem *pMem, /* Memory cell to set to string value */
1061 const char *z, /* String pointer */
1062 int n, /* Bytes in string, or negative */
drheb2e1762004-05-27 01:53:56 +00001063 u8 enc, /* Encoding of z. 0 for BLOBs */
danielk1977d8123362004-06-12 09:25:12 +00001064 void (*xDel)(void*) /* Destructor function */
drh4f26d6c2004-05-26 23:25:30 +00001065){
danielk1977a7a8e142008-02-13 18:25:27 +00001066 int nByte = n; /* New value for pMem->n */
drh0a687d12008-07-08 14:52:07 +00001067 int iLimit; /* Maximum allowed string or blob size */
drh8df32842008-12-09 02:51:23 +00001068 u16 flags = 0; /* New value for pMem->flags */
danielk1977a7a8e142008-02-13 18:25:27 +00001069
drhb21c8cd2007-08-21 19:33:56 +00001070 assert( pMem->db==0 || sqlite3_mutex_held(pMem->db->mutex) );
drh9d67afc2018-08-29 20:24:03 +00001071 assert( !sqlite3VdbeMemIsRowSet(pMem) );
danielk1977a7a8e142008-02-13 18:25:27 +00001072
1073 /* If z is a NULL pointer, set pMem to contain an SQL NULL. */
drh4f26d6c2004-05-26 23:25:30 +00001074 if( !z ){
danielk1977a7a8e142008-02-13 18:25:27 +00001075 sqlite3VdbeMemSetNull(pMem);
drh4f26d6c2004-05-26 23:25:30 +00001076 return SQLITE_OK;
1077 }
danielk1977a7a8e142008-02-13 18:25:27 +00001078
drh0a687d12008-07-08 14:52:07 +00001079 if( pMem->db ){
1080 iLimit = pMem->db->aLimit[SQLITE_LIMIT_LENGTH];
1081 }else{
1082 iLimit = SQLITE_MAX_LENGTH;
1083 }
danielk1977a7a8e142008-02-13 18:25:27 +00001084 flags = (enc==0?MEM_Blob:MEM_Str);
1085 if( nByte<0 ){
1086 assert( enc!=0 );
drh8fd38972008-02-19 15:44:09 +00001087 if( enc==SQLITE_UTF8 ){
drhb32c18b2017-08-21 02:05:22 +00001088 nByte = 0x7fffffff & (int)strlen(z);
drh8fd38972008-02-19 15:44:09 +00001089 }else{
drh0a687d12008-07-08 14:52:07 +00001090 for(nByte=0; nByte<=iLimit && (z[nByte] | z[nByte+1]); nByte+=2){}
drh8fd38972008-02-19 15:44:09 +00001091 }
danielk1977a7a8e142008-02-13 18:25:27 +00001092 flags |= MEM_Term;
drh4f26d6c2004-05-26 23:25:30 +00001093 }
danielk1977d8123362004-06-12 09:25:12 +00001094
danielk1977a7a8e142008-02-13 18:25:27 +00001095 /* The following block sets the new values of Mem.z and Mem.xDel. It
1096 ** also sets a flag in local variable "flags" to indicate the memory
1097 ** management (one of MEM_Dyn or MEM_Static).
1098 */
1099 if( xDel==SQLITE_TRANSIENT ){
drh16d7e872019-02-08 17:28:20 +00001100 u32 nAlloc = nByte;
danielk1977a7a8e142008-02-13 18:25:27 +00001101 if( flags&MEM_Term ){
1102 nAlloc += (enc==SQLITE_UTF8?1:2);
1103 }
drh0793f1b2008-11-05 17:41:19 +00001104 if( nByte>iLimit ){
drhc3dcdba2019-04-09 21:32:46 +00001105 return sqlite3ErrorToParser(pMem->db, SQLITE_TOOBIG);
drh0793f1b2008-11-05 17:41:19 +00001106 }
drh722246e2014-10-07 23:02:24 +00001107 testcase( nAlloc==0 );
1108 testcase( nAlloc==31 );
1109 testcase( nAlloc==32 );
drh16d7e872019-02-08 17:28:20 +00001110 if( sqlite3VdbeMemClearAndResize(pMem, (int)MAX(nAlloc,32)) ){
mistachkinfad30392016-02-13 23:43:46 +00001111 return SQLITE_NOMEM_BKPT;
danielk1977a7a8e142008-02-13 18:25:27 +00001112 }
1113 memcpy(pMem->z, z, nAlloc);
danielk1977a7a8e142008-02-13 18:25:27 +00001114 }else{
1115 sqlite3VdbeMemRelease(pMem);
1116 pMem->z = (char *)z;
drh16d7e872019-02-08 17:28:20 +00001117 if( xDel==SQLITE_DYNAMIC ){
1118 pMem->zMalloc = pMem->z;
1119 pMem->szMalloc = sqlite3DbMallocSize(pMem->db, pMem->zMalloc);
1120 }else{
1121 pMem->xDel = xDel;
1122 flags |= ((xDel==SQLITE_STATIC)?MEM_Static:MEM_Dyn);
1123 }
danielk1977a7a8e142008-02-13 18:25:27 +00001124 }
danielk1977d8123362004-06-12 09:25:12 +00001125
danielk1977a7a8e142008-02-13 18:25:27 +00001126 pMem->n = nByte;
1127 pMem->flags = flags;
dan9f3e6fa2020-01-02 16:24:22 +00001128 if( enc ){
1129 pMem->enc = enc;
drh1b39aab2020-01-02 18:37:04 +00001130#ifdef SQLITE_ENABLE_SESSION
1131 }else if( pMem->db==0 ){
dan9f3e6fa2020-01-02 16:24:22 +00001132 pMem->enc = SQLITE_UTF8;
drh1b39aab2020-01-02 18:37:04 +00001133#endif
1134 }else{
1135 assert( pMem->db!=0 );
1136 pMem->enc = ENC(pMem->db);
dan9f3e6fa2020-01-02 16:24:22 +00001137 }
1138
drh6c626082004-11-14 21:56:29 +00001139#ifndef SQLITE_OMIT_UTF16
dan9f3e6fa2020-01-02 16:24:22 +00001140 if( enc>SQLITE_UTF8 && sqlite3VdbeMemHandleBom(pMem) ){
mistachkinfad30392016-02-13 23:43:46 +00001141 return SQLITE_NOMEM_BKPT;
drh4f26d6c2004-05-26 23:25:30 +00001142 }
danielk1977a7a8e142008-02-13 18:25:27 +00001143#endif
1144
drh9a65f2c2009-06-22 19:05:40 +00001145 if( nByte>iLimit ){
1146 return SQLITE_TOOBIG;
1147 }
1148
drhf4479502004-05-27 03:12:53 +00001149 return SQLITE_OK;
drh4f26d6c2004-05-26 23:25:30 +00001150}
1151
1152/*
drhd5788202004-05-28 08:21:05 +00001153** Move data out of a btree key or data field and into a Mem structure.
drhcb3cabd2016-11-25 19:18:28 +00001154** The data is payload from the entry that pCur is currently pointing
drhd5788202004-05-28 08:21:05 +00001155** to. offset and amt determine what portion of the data or key to retrieve.
drhcb3cabd2016-11-25 19:18:28 +00001156** The result is written into the pMem element.
drhd5788202004-05-28 08:21:05 +00001157**
drh2a2a6962014-09-16 18:22:44 +00001158** The pMem object must have been initialized. This routine will use
1159** pMem->zMalloc to hold the content from the btree, if possible. New
1160** pMem->zMalloc space will be allocated if necessary. The calling routine
1161** is responsible for making sure that the pMem object is eventually
1162** destroyed.
drhd5788202004-05-28 08:21:05 +00001163**
1164** If this routine fails for any reason (malloc returns NULL or unable
1165** to read from the disk) then the pMem is left in an inconsistent state.
1166*/
drh2a740062020-02-05 18:28:17 +00001167int sqlite3VdbeMemFromBtree(
drhf1aabd62015-06-17 01:31:28 +00001168 BtCursor *pCur, /* Cursor pointing at record to retrieve. */
1169 u32 offset, /* Offset from the start of data to return bytes from. */
1170 u32 amt, /* Number of bytes to return. */
drhf1aabd62015-06-17 01:31:28 +00001171 Mem *pMem /* OUT: Return data in this Mem structure. */
1172){
1173 int rc;
1174 pMem->flags = MEM_Null;
drh53d30dd2019-02-04 21:10:24 +00001175 if( sqlite3BtreeMaxRecordSize(pCur)<offset+amt ){
1176 return SQLITE_CORRUPT_BKPT;
1177 }
drh24ddadf2017-09-22 12:52:31 +00001178 if( SQLITE_OK==(rc = sqlite3VdbeMemClearAndResize(pMem, amt+1)) ){
drhcb3cabd2016-11-25 19:18:28 +00001179 rc = sqlite3BtreePayload(pCur, offset, amt, pMem->z);
drhf1aabd62015-06-17 01:31:28 +00001180 if( rc==SQLITE_OK ){
drh24ddadf2017-09-22 12:52:31 +00001181 pMem->z[amt] = 0; /* Overrun area used when reading malformed records */
drh63d16322017-09-20 18:07:50 +00001182 pMem->flags = MEM_Blob;
drhf1aabd62015-06-17 01:31:28 +00001183 pMem->n = (int)amt;
1184 }else{
1185 sqlite3VdbeMemRelease(pMem);
1186 }
1187 }
1188 return rc;
1189}
drh2a740062020-02-05 18:28:17 +00001190int sqlite3VdbeMemFromBtreeZeroOffset(
drhd5788202004-05-28 08:21:05 +00001191 BtCursor *pCur, /* Cursor pointing at record to retrieve. */
drh501932c2013-11-21 21:59:53 +00001192 u32 amt, /* Number of bytes to return. */
drhd5788202004-05-28 08:21:05 +00001193 Mem *pMem /* OUT: Return data in this Mem structure. */
1194){
drh501932c2013-11-21 21:59:53 +00001195 u32 available = 0; /* Number of bytes available on the local btree page */
danielk19774b0aa4c2009-05-28 11:05:57 +00001196 int rc = SQLITE_OK; /* Return code */
drhd5788202004-05-28 08:21:05 +00001197
drh5d1a8722009-07-22 18:07:40 +00001198 assert( sqlite3BtreeCursorIsValid(pCur) );
drhd3b74202014-09-17 16:41:15 +00001199 assert( !VdbeMemDynamic(pMem) );
drh5d1a8722009-07-22 18:07:40 +00001200
danielk19774b0aa4c2009-05-28 11:05:57 +00001201 /* Note: the calls to BtreeKeyFetch() and DataFetch() below assert()
1202 ** that both the BtShared and database handle mutexes are held. */
drh9d67afc2018-08-29 20:24:03 +00001203 assert( !sqlite3VdbeMemIsRowSet(pMem) );
drh2a740062020-02-05 18:28:17 +00001204 pMem->z = (char *)sqlite3BtreePayloadFetch(pCur, &available);
1205 assert( pMem->z!=0 );
drhd5788202004-05-28 08:21:05 +00001206
drh2a740062020-02-05 18:28:17 +00001207 if( amt<=available ){
drhd5788202004-05-28 08:21:05 +00001208 pMem->flags = MEM_Blob|MEM_Ephem;
drh5f1d5362014-03-04 13:18:23 +00001209 pMem->n = (int)amt;
drh8740a602014-09-16 20:05:21 +00001210 }else{
drh2a740062020-02-05 18:28:17 +00001211 rc = sqlite3VdbeMemFromBtree(pCur, 0, amt, pMem);
drhd5788202004-05-28 08:21:05 +00001212 }
1213
danielk1977a7a8e142008-02-13 18:25:27 +00001214 return rc;
drhd5788202004-05-28 08:21:05 +00001215}
1216
drh6c9f8e62014-08-27 03:28:50 +00001217/*
1218** The pVal argument is known to be a value other than NULL.
1219** Convert it into a string with encoding enc and return a pointer
1220** to a zero-terminated version of that string.
1221*/
drh3b335fc2014-10-07 16:59:22 +00001222static SQLITE_NOINLINE const void *valueToText(sqlite3_value* pVal, u8 enc){
drh6c9f8e62014-08-27 03:28:50 +00001223 assert( pVal!=0 );
1224 assert( pVal->db==0 || sqlite3_mutex_held(pVal->db->mutex) );
1225 assert( (enc&3)==(enc&~SQLITE_UTF16_ALIGNED) );
drh9d67afc2018-08-29 20:24:03 +00001226 assert( !sqlite3VdbeMemIsRowSet(pVal) );
drh6c9f8e62014-08-27 03:28:50 +00001227 assert( (pVal->flags & (MEM_Null))==0 );
1228 if( pVal->flags & (MEM_Blob|MEM_Str) ){
drh34d04d62017-01-05 07:58:29 +00001229 if( ExpandBlob(pVal) ) return 0;
drh6c9f8e62014-08-27 03:28:50 +00001230 pVal->flags |= MEM_Str;
drh6c9f8e62014-08-27 03:28:50 +00001231 if( pVal->enc != (enc & ~SQLITE_UTF16_ALIGNED) ){
1232 sqlite3VdbeChangeEncoding(pVal, enc & ~SQLITE_UTF16_ALIGNED);
1233 }
1234 if( (enc & SQLITE_UTF16_ALIGNED)!=0 && 1==(1&SQLITE_PTR_TO_INT(pVal->z)) ){
1235 assert( (pVal->flags & (MEM_Ephem|MEM_Static))!=0 );
1236 if( sqlite3VdbeMemMakeWriteable(pVal)!=SQLITE_OK ){
1237 return 0;
1238 }
1239 }
1240 sqlite3VdbeMemNulTerminate(pVal); /* IMP: R-31275-44060 */
1241 }else{
1242 sqlite3VdbeMemStringify(pVal, enc, 0);
1243 assert( 0==(1&SQLITE_PTR_TO_INT(pVal->z)) );
1244 }
1245 assert(pVal->enc==(enc & ~SQLITE_UTF16_ALIGNED) || pVal->db==0
1246 || pVal->db->mallocFailed );
1247 if( pVal->enc==(enc & ~SQLITE_UTF16_ALIGNED) ){
drhdf82afc2019-05-16 01:22:21 +00001248 assert( sqlite3VdbeMemValidStrRep(pVal) );
drh6c9f8e62014-08-27 03:28:50 +00001249 return pVal->z;
1250 }else{
1251 return 0;
1252 }
1253}
1254
danielk19774e6af132004-06-10 14:01:08 +00001255/* This function is only available internally, it is not part of the
1256** external API. It works in a similar way to sqlite3_value_text(),
1257** except the data returned is in the encoding specified by the second
1258** parameter, which must be one of SQLITE_UTF16BE, SQLITE_UTF16LE or
1259** SQLITE_UTF8.
drh7d9bd4e2006-02-16 18:16:36 +00001260**
1261** (2006-02-16:) The enc value can be or-ed with SQLITE_UTF16_ALIGNED.
1262** If that is the case, then the result must be aligned on an even byte
1263** boundary.
danielk19774e6af132004-06-10 14:01:08 +00001264*/
drhb21c8cd2007-08-21 19:33:56 +00001265const void *sqlite3ValueText(sqlite3_value* pVal, u8 enc){
danielk1977bfd6cce2004-06-18 04:24:54 +00001266 if( !pVal ) return 0;
drhb21c8cd2007-08-21 19:33:56 +00001267 assert( pVal->db==0 || sqlite3_mutex_held(pVal->db->mutex) );
drh7d9bd4e2006-02-16 18:16:36 +00001268 assert( (enc&3)==(enc&~SQLITE_UTF16_ALIGNED) );
drh9d67afc2018-08-29 20:24:03 +00001269 assert( !sqlite3VdbeMemIsRowSet(pVal) );
drh6c9f8e62014-08-27 03:28:50 +00001270 if( (pVal->flags&(MEM_Str|MEM_Term))==(MEM_Str|MEM_Term) && pVal->enc==enc ){
drhdf82afc2019-05-16 01:22:21 +00001271 assert( sqlite3VdbeMemValidStrRep(pVal) );
drh6c9f8e62014-08-27 03:28:50 +00001272 return pVal->z;
1273 }
danielk19774e6af132004-06-10 14:01:08 +00001274 if( pVal->flags&MEM_Null ){
danielk19774e6af132004-06-10 14:01:08 +00001275 return 0;
1276 }
drh6c9f8e62014-08-27 03:28:50 +00001277 return valueToText(pVal, enc);
danielk19774e6af132004-06-10 14:01:08 +00001278}
1279
drh6a6124e2004-06-27 01:56:33 +00001280/*
1281** Create a new sqlite3_value object.
1282*/
drh17435752007-08-16 04:30:38 +00001283sqlite3_value *sqlite3ValueNew(sqlite3 *db){
danielk197726783a52007-08-29 14:06:22 +00001284 Mem *p = sqlite3DbMallocZero(db, sizeof(*p));
danielk19774e6af132004-06-10 14:01:08 +00001285 if( p ){
1286 p->flags = MEM_Null;
drhb21c8cd2007-08-21 19:33:56 +00001287 p->db = db;
danielk19774e6af132004-06-10 14:01:08 +00001288 }
1289 return p;
1290}
1291
drh6a6124e2004-06-27 01:56:33 +00001292/*
danaf2583c2013-08-15 18:43:21 +00001293** Context object passed by sqlite3Stat4ProbeSetValue() through to
1294** valueNew(). See comments above valueNew() for details.
danielk1977aee18ef2005-03-09 12:26:50 +00001295*/
danaf2583c2013-08-15 18:43:21 +00001296struct ValueNewStat4Ctx {
1297 Parse *pParse;
1298 Index *pIdx;
1299 UnpackedRecord **ppRec;
1300 int iVal;
1301};
1302
1303/*
1304** Allocate and return a pointer to a new sqlite3_value object. If
1305** the second argument to this function is NULL, the object is allocated
1306** by calling sqlite3ValueNew().
1307**
1308** Otherwise, if the second argument is non-zero, then this function is
1309** being called indirectly by sqlite3Stat4ProbeSetValue(). If it has not
1310** already been allocated, allocate the UnpackedRecord structure that
drh96f4ad22015-03-12 21:02:36 +00001311** that function will return to its caller here. Then return a pointer to
danaf2583c2013-08-15 18:43:21 +00001312** an sqlite3_value within the UnpackedRecord.a[] array.
1313*/
1314static sqlite3_value *valueNew(sqlite3 *db, struct ValueNewStat4Ctx *p){
drh175b8f02019-08-08 15:24:17 +00001315#ifdef SQLITE_ENABLE_STAT4
danaf2583c2013-08-15 18:43:21 +00001316 if( p ){
1317 UnpackedRecord *pRec = p->ppRec[0];
1318
1319 if( pRec==0 ){
1320 Index *pIdx = p->pIdx; /* Index being probed */
1321 int nByte; /* Bytes of space to allocate */
1322 int i; /* Counter variable */
drhd2694612013-11-04 22:04:17 +00001323 int nCol = pIdx->nColumn; /* Number of index columns including rowid */
danaf2583c2013-08-15 18:43:21 +00001324
danb5f68b02013-12-03 18:26:56 +00001325 nByte = sizeof(Mem) * nCol + ROUND8(sizeof(UnpackedRecord));
danaf2583c2013-08-15 18:43:21 +00001326 pRec = (UnpackedRecord*)sqlite3DbMallocZero(db, nByte);
1327 if( pRec ){
drh2ec2fb22013-11-06 19:59:23 +00001328 pRec->pKeyInfo = sqlite3KeyInfoOfIndex(p->pParse, pIdx);
danaf2583c2013-08-15 18:43:21 +00001329 if( pRec->pKeyInfo ){
drha485ad12017-08-02 22:43:14 +00001330 assert( pRec->pKeyInfo->nAllField==nCol );
drh2ec2fb22013-11-06 19:59:23 +00001331 assert( pRec->pKeyInfo->enc==ENC(db) );
danb5f68b02013-12-03 18:26:56 +00001332 pRec->aMem = (Mem *)((u8*)pRec + ROUND8(sizeof(UnpackedRecord)));
danaf2583c2013-08-15 18:43:21 +00001333 for(i=0; i<nCol; i++){
1334 pRec->aMem[i].flags = MEM_Null;
danaf2583c2013-08-15 18:43:21 +00001335 pRec->aMem[i].db = db;
1336 }
1337 }else{
drhdbd6a7d2017-04-05 12:39:49 +00001338 sqlite3DbFreeNN(db, pRec);
danaf2583c2013-08-15 18:43:21 +00001339 pRec = 0;
1340 }
1341 }
1342 if( pRec==0 ) return 0;
1343 p->ppRec[0] = pRec;
1344 }
1345
1346 pRec->nField = p->iVal+1;
1347 return &pRec->aMem[p->iVal];
1348 }
drh4f991892013-10-11 15:05:05 +00001349#else
1350 UNUSED_PARAMETER(p);
drh175b8f02019-08-08 15:24:17 +00001351#endif /* defined(SQLITE_ENABLE_STAT4) */
danaf2583c2013-08-15 18:43:21 +00001352 return sqlite3ValueNew(db);
dan7a419232013-08-06 20:01:43 +00001353}
1354
drh6a6124e2004-06-27 01:56:33 +00001355/*
dan18bf8072015-03-11 20:06:40 +00001356** The expression object indicated by the second argument is guaranteed
1357** to be a scalar SQL function. If
1358**
1359** * all function arguments are SQL literals,
drhe3a73072015-09-05 19:07:08 +00001360** * one of the SQLITE_FUNC_CONSTANT or _SLOCHNG function flags is set, and
dancdcc11d2015-03-11 20:59:42 +00001361** * the SQLITE_FUNC_NEEDCOLL function flag is not set,
dan18bf8072015-03-11 20:06:40 +00001362**
1363** then this routine attempts to invoke the SQL function. Assuming no
1364** error occurs, output parameter (*ppVal) is set to point to a value
1365** object containing the result before returning SQLITE_OK.
1366**
1367** Affinity aff is applied to the result of the function before returning.
1368** If the result is a text value, the sqlite3_value object uses encoding
1369** enc.
1370**
1371** If the conditions above are not met, this function returns SQLITE_OK
1372** and sets (*ppVal) to NULL. Or, if an error occurs, (*ppVal) is set to
1373** NULL and an SQLite error code returned.
1374*/
drh175b8f02019-08-08 15:24:17 +00001375#ifdef SQLITE_ENABLE_STAT4
dan18bf8072015-03-11 20:06:40 +00001376static int valueFromFunction(
1377 sqlite3 *db, /* The database connection */
1378 Expr *p, /* The expression to evaluate */
1379 u8 enc, /* Encoding to use */
1380 u8 aff, /* Affinity to use */
1381 sqlite3_value **ppVal, /* Write the new value here */
1382 struct ValueNewStat4Ctx *pCtx /* Second argument for valueNew() */
1383){
1384 sqlite3_context ctx; /* Context object for function invocation */
1385 sqlite3_value **apVal = 0; /* Function arguments */
1386 int nVal = 0; /* Size of apVal[] array */
1387 FuncDef *pFunc = 0; /* Function definition */
1388 sqlite3_value *pVal = 0; /* New value */
1389 int rc = SQLITE_OK; /* Return code */
dancdcc11d2015-03-11 20:59:42 +00001390 ExprList *pList = 0; /* Function arguments */
dan18bf8072015-03-11 20:06:40 +00001391 int i; /* Iterator variable */
1392
drh96f4ad22015-03-12 21:02:36 +00001393 assert( pCtx!=0 );
1394 assert( (p->flags & EP_TokenOnly)==0 );
1395 pList = p->x.pList;
1396 if( pList ) nVal = pList->nExpr;
drh80738d92016-02-15 00:34:16 +00001397 pFunc = sqlite3FindFunction(db, p->u.zToken, nVal, enc, 0);
dan18bf8072015-03-11 20:06:40 +00001398 assert( pFunc );
drhe3a73072015-09-05 19:07:08 +00001399 if( (pFunc->funcFlags & (SQLITE_FUNC_CONSTANT|SQLITE_FUNC_SLOCHNG))==0
dan18bf8072015-03-11 20:06:40 +00001400 || (pFunc->funcFlags & SQLITE_FUNC_NEEDCOLL)
1401 ){
1402 return SQLITE_OK;
1403 }
1404
1405 if( pList ){
1406 apVal = (sqlite3_value**)sqlite3DbMallocZero(db, sizeof(apVal[0]) * nVal);
1407 if( apVal==0 ){
mistachkinfad30392016-02-13 23:43:46 +00001408 rc = SQLITE_NOMEM_BKPT;
dan18bf8072015-03-11 20:06:40 +00001409 goto value_from_function_out;
1410 }
1411 for(i=0; i<nVal; i++){
1412 rc = sqlite3ValueFromExpr(db, pList->a[i].pExpr, enc, aff, &apVal[i]);
drha9e03b12015-03-12 06:46:52 +00001413 if( apVal[i]==0 || rc!=SQLITE_OK ) goto value_from_function_out;
dan18bf8072015-03-11 20:06:40 +00001414 }
1415 }
1416
1417 pVal = valueNew(db, pCtx);
1418 if( pVal==0 ){
mistachkinfad30392016-02-13 23:43:46 +00001419 rc = SQLITE_NOMEM_BKPT;
dan18bf8072015-03-11 20:06:40 +00001420 goto value_from_function_out;
1421 }
1422
dan3df30592015-03-13 08:31:54 +00001423 assert( pCtx->pParse->rc==SQLITE_OK );
dan18bf8072015-03-11 20:06:40 +00001424 memset(&ctx, 0, sizeof(ctx));
1425 ctx.pOut = pVal;
1426 ctx.pFunc = pFunc;
drh2d801512016-01-14 22:19:58 +00001427 pFunc->xSFunc(&ctx, nVal, apVal);
dan18bf8072015-03-11 20:06:40 +00001428 if( ctx.isError ){
1429 rc = ctx.isError;
drh96f4ad22015-03-12 21:02:36 +00001430 sqlite3ErrorMsg(pCtx->pParse, "%s", sqlite3_value_text(pVal));
dan18bf8072015-03-11 20:06:40 +00001431 }else{
1432 sqlite3ValueApplyAffinity(pVal, aff, SQLITE_UTF8);
drh96f4ad22015-03-12 21:02:36 +00001433 assert( rc==SQLITE_OK );
1434 rc = sqlite3VdbeChangeEncoding(pVal, enc);
dan18bf8072015-03-11 20:06:40 +00001435 if( rc==SQLITE_OK && sqlite3VdbeMemTooBig(pVal) ){
1436 rc = SQLITE_TOOBIG;
dan3df30592015-03-13 08:31:54 +00001437 pCtx->pParse->nErr++;
dan18bf8072015-03-11 20:06:40 +00001438 }
1439 }
dan3df30592015-03-13 08:31:54 +00001440 pCtx->pParse->rc = rc;
dan18bf8072015-03-11 20:06:40 +00001441
1442 value_from_function_out:
1443 if( rc!=SQLITE_OK ){
dan18bf8072015-03-11 20:06:40 +00001444 pVal = 0;
1445 }
drha9e03b12015-03-12 06:46:52 +00001446 if( apVal ){
1447 for(i=0; i<nVal; i++){
1448 sqlite3ValueFree(apVal[i]);
1449 }
drhdbd6a7d2017-04-05 12:39:49 +00001450 sqlite3DbFreeNN(db, apVal);
dan18bf8072015-03-11 20:06:40 +00001451 }
dan18bf8072015-03-11 20:06:40 +00001452
1453 *ppVal = pVal;
1454 return rc;
1455}
1456#else
1457# define valueFromFunction(a,b,c,d,e,f) SQLITE_OK
drh175b8f02019-08-08 15:24:17 +00001458#endif /* defined(SQLITE_ENABLE_STAT4) */
dan18bf8072015-03-11 20:06:40 +00001459
1460/*
danaf2583c2013-08-15 18:43:21 +00001461** Extract a value from the supplied expression in the manner described
1462** above sqlite3ValueFromExpr(). Allocate the sqlite3_value object
1463** using valueNew().
1464**
1465** If pCtx is NULL and an error occurs after the sqlite3_value object
1466** has been allocated, it is freed before returning. Or, if pCtx is not
1467** NULL, it is assumed that the caller will free any allocated object
1468** in all cases.
danielk1977aee18ef2005-03-09 12:26:50 +00001469*/
drha7f4bf32013-10-14 13:21:00 +00001470static int valueFromExpr(
danaf2583c2013-08-15 18:43:21 +00001471 sqlite3 *db, /* The database connection */
1472 Expr *pExpr, /* The expression to evaluate */
1473 u8 enc, /* Encoding to use */
1474 u8 affinity, /* Affinity to use */
1475 sqlite3_value **ppVal, /* Write the new value here */
1476 struct ValueNewStat4Ctx *pCtx /* Second argument for valueNew() */
danielk1977aee18ef2005-03-09 12:26:50 +00001477){
1478 int op;
1479 char *zVal = 0;
1480 sqlite3_value *pVal = 0;
drh93518622010-09-30 14:48:06 +00001481 int negInt = 1;
1482 const char *zNeg = "";
drh0e1f0022013-08-16 14:49:00 +00001483 int rc = SQLITE_OK;
danielk1977aee18ef2005-03-09 12:26:50 +00001484
drh42735c72016-09-29 19:27:16 +00001485 assert( pExpr!=0 );
drh94fa9c42016-02-27 21:16:04 +00001486 while( (op = pExpr->op)==TK_UPLUS || op==TK_SPAN ) pExpr = pExpr->pLeft;
drh175b8f02019-08-08 15:24:17 +00001487#if defined(SQLITE_ENABLE_STAT4)
dan7ac2d482017-11-27 17:56:14 +00001488 if( op==TK_REGISTER ) op = pExpr->op2;
drh01f6b2d2017-12-06 20:50:08 +00001489#else
1490 if( NEVER(op==TK_REGISTER) ) op = pExpr->op2;
1491#endif
danielk1977aee18ef2005-03-09 12:26:50 +00001492
drh96f4ad22015-03-12 21:02:36 +00001493 /* Compressed expressions only appear when parsing the DEFAULT clause
1494 ** on a table column definition, and hence only when pCtx==0. This
1495 ** check ensures that an EP_TokenOnly expression is never passed down
1496 ** into valueFromFunction(). */
1497 assert( (pExpr->flags & EP_TokenOnly)==0 || pCtx==0 );
1498
drh4169e432014-08-25 20:11:52 +00001499 if( op==TK_CAST ){
1500 u8 aff = sqlite3AffinityType(pExpr->u.zToken,0);
1501 rc = valueFromExpr(db, pExpr->pLeft, enc, aff, ppVal, pCtx);
drhec3e4f72014-08-25 21:11:01 +00001502 testcase( rc!=SQLITE_OK );
1503 if( *ppVal ){
drh4169e432014-08-25 20:11:52 +00001504 sqlite3VdbeMemCast(*ppVal, aff, SQLITE_UTF8);
1505 sqlite3ValueApplyAffinity(*ppVal, affinity, SQLITE_UTF8);
1506 }
1507 return rc;
1508 }
1509
drh93518622010-09-30 14:48:06 +00001510 /* Handle negative integers in a single step. This is needed in the
1511 ** case when the value is -9223372036854775808.
1512 */
1513 if( op==TK_UMINUS
1514 && (pExpr->pLeft->op==TK_INTEGER || pExpr->pLeft->op==TK_FLOAT) ){
1515 pExpr = pExpr->pLeft;
1516 op = pExpr->op;
1517 negInt = -1;
1518 zNeg = "-";
1519 }
1520
danielk1977aee18ef2005-03-09 12:26:50 +00001521 if( op==TK_STRING || op==TK_FLOAT || op==TK_INTEGER ){
danaf2583c2013-08-15 18:43:21 +00001522 pVal = valueNew(db, pCtx);
drh33e619f2009-05-28 01:00:55 +00001523 if( pVal==0 ) goto no_mem;
1524 if( ExprHasProperty(pExpr, EP_IntValue) ){
drh93518622010-09-30 14:48:06 +00001525 sqlite3VdbeMemSetInt64(pVal, (i64)pExpr->u.iValue*negInt);
drh33e619f2009-05-28 01:00:55 +00001526 }else{
drh93518622010-09-30 14:48:06 +00001527 zVal = sqlite3MPrintf(db, "%s%s", zNeg, pExpr->u.zToken);
drh33e619f2009-05-28 01:00:55 +00001528 if( zVal==0 ) goto no_mem;
1529 sqlite3ValueSetStr(pVal, -1, zVal, SQLITE_UTF8, SQLITE_DYNAMIC);
1530 }
drh05883a32015-06-02 15:32:08 +00001531 if( (op==TK_INTEGER || op==TK_FLOAT ) && affinity==SQLITE_AFF_BLOB ){
drhe3b9bfe2009-05-05 12:54:50 +00001532 sqlite3ValueApplyAffinity(pVal, SQLITE_AFF_NUMERIC, SQLITE_UTF8);
danielk1977aee18ef2005-03-09 12:26:50 +00001533 }else{
drhe3b9bfe2009-05-05 12:54:50 +00001534 sqlite3ValueApplyAffinity(pVal, affinity, SQLITE_UTF8);
1535 }
drh3242c692019-05-04 01:29:13 +00001536 assert( (pVal->flags & MEM_IntReal)==0 );
1537 if( pVal->flags & (MEM_Int|MEM_IntReal|MEM_Real) ){
1538 testcase( pVal->flags & MEM_Int );
1539 testcase( pVal->flags & MEM_Real );
1540 pVal->flags &= ~MEM_Str;
1541 }
drhe3b9bfe2009-05-05 12:54:50 +00001542 if( enc!=SQLITE_UTF8 ){
drh0e1f0022013-08-16 14:49:00 +00001543 rc = sqlite3VdbeChangeEncoding(pVal, enc);
danielk1977aee18ef2005-03-09 12:26:50 +00001544 }
1545 }else if( op==TK_UMINUS ) {
drh93518622010-09-30 14:48:06 +00001546 /* This branch happens for multiple negative signs. Ex: -(-5) */
drh6e3bccd2017-06-13 04:31:54 +00001547 if( SQLITE_OK==valueFromExpr(db,pExpr->pLeft,enc,affinity,&pVal,pCtx)
danad45ed72013-08-08 12:21:32 +00001548 && pVal!=0
1549 ){
drh93518622010-09-30 14:48:06 +00001550 sqlite3VdbeMemNumerify(pVal);
drh74eaba42014-09-18 17:52:15 +00001551 if( pVal->flags & MEM_Real ){
1552 pVal->u.r = -pVal->u.r;
1553 }else if( pVal->u.i==SMALLEST_INT64 ){
drhef9f7192020-01-17 19:14:08 +00001554#ifndef SQLITE_OMIT_FLOATING_POINT
drh74eaba42014-09-18 17:52:15 +00001555 pVal->u.r = -(double)SMALLEST_INT64;
drhef9f7192020-01-17 19:14:08 +00001556#else
1557 pVal->u.r = LARGEST_INT64;
1558#endif
drh74eaba42014-09-18 17:52:15 +00001559 MemSetTypeFlag(pVal, MEM_Real);
drhd50ffc42011-03-08 02:38:28 +00001560 }else{
1561 pVal->u.i = -pVal->u.i;
1562 }
drh93518622010-09-30 14:48:06 +00001563 sqlite3ValueApplyAffinity(pVal, affinity, enc);
danielk1977aee18ef2005-03-09 12:26:50 +00001564 }
drh9b3eb0a2011-01-21 14:37:04 +00001565 }else if( op==TK_NULL ){
danaf2583c2013-08-15 18:43:21 +00001566 pVal = valueNew(db, pCtx);
drhb1aa0ab2011-02-18 17:23:23 +00001567 if( pVal==0 ) goto no_mem;
mistachkin7a3e50d2019-04-18 19:21:19 +00001568 sqlite3VdbeMemSetNull(pVal);
danielk1977aee18ef2005-03-09 12:26:50 +00001569 }
1570#ifndef SQLITE_OMIT_BLOB_LITERAL
1571 else if( op==TK_BLOB ){
1572 int nVal;
drh33e619f2009-05-28 01:00:55 +00001573 assert( pExpr->u.zToken[0]=='x' || pExpr->u.zToken[0]=='X' );
1574 assert( pExpr->u.zToken[1]=='\'' );
danaf2583c2013-08-15 18:43:21 +00001575 pVal = valueNew(db, pCtx);
danielk1977f150c9d2008-10-30 17:21:12 +00001576 if( !pVal ) goto no_mem;
drh33e619f2009-05-28 01:00:55 +00001577 zVal = &pExpr->u.zToken[2];
drhb7916a72009-05-27 10:31:29 +00001578 nVal = sqlite3Strlen30(zVal)-1;
1579 assert( zVal[nVal]=='\'' );
drhca48c902008-01-18 14:08:24 +00001580 sqlite3VdbeMemSetStr(pVal, sqlite3HexToBlob(db, zVal, nVal), nVal/2,
drh633e6d52008-07-28 19:34:53 +00001581 0, SQLITE_DYNAMIC);
danielk1977aee18ef2005-03-09 12:26:50 +00001582 }
1583#endif
drh175b8f02019-08-08 15:24:17 +00001584#ifdef SQLITE_ENABLE_STAT4
drh96f4ad22015-03-12 21:02:36 +00001585 else if( op==TK_FUNCTION && pCtx!=0 ){
dan18bf8072015-03-11 20:06:40 +00001586 rc = valueFromFunction(db, pExpr, enc, affinity, &pVal, pCtx);
1587 }
drh8cdcd872015-03-16 13:48:23 +00001588#endif
drh3bc43152018-04-18 11:35:35 +00001589 else if( op==TK_TRUEFALSE ){
danc2ea77e2019-01-25 17:26:59 +00001590 pVal = valueNew(db, pCtx);
1591 if( pVal ){
1592 pVal->flags = MEM_Int;
1593 pVal->u.i = pExpr->u.zToken[4]==0;
1594 }
drh3bc43152018-04-18 11:35:35 +00001595 }
dan18bf8072015-03-11 20:06:40 +00001596
danielk1977aee18ef2005-03-09 12:26:50 +00001597 *ppVal = pVal;
drh0e1f0022013-08-16 14:49:00 +00001598 return rc;
danielk1977aee18ef2005-03-09 12:26:50 +00001599
1600no_mem:
drh175b8f02019-08-08 15:24:17 +00001601#ifdef SQLITE_ENABLE_STAT4
drh84a6c852017-12-13 23:47:55 +00001602 if( pCtx==0 || pCtx->pParse->nErr==0 )
1603#endif
1604 sqlite3OomFault(db);
drh633e6d52008-07-28 19:34:53 +00001605 sqlite3DbFree(db, zVal);
danaf2583c2013-08-15 18:43:21 +00001606 assert( *ppVal==0 );
drh175b8f02019-08-08 15:24:17 +00001607#ifdef SQLITE_ENABLE_STAT4
danaf2583c2013-08-15 18:43:21 +00001608 if( pCtx==0 ) sqlite3ValueFree(pVal);
drh1435a9a2013-08-27 23:15:44 +00001609#else
1610 assert( pCtx==0 ); sqlite3ValueFree(pVal);
1611#endif
mistachkinfad30392016-02-13 23:43:46 +00001612 return SQLITE_NOMEM_BKPT;
danielk1977aee18ef2005-03-09 12:26:50 +00001613}
1614
1615/*
dan87cd9322013-08-07 15:52:41 +00001616** Create a new sqlite3_value object, containing the value of pExpr.
1617**
1618** This only works for very simple expressions that consist of one constant
1619** token (i.e. "5", "5.1", "'a string'"). If the expression can
1620** be converted directly into a value, then the value is allocated and
1621** a pointer written to *ppVal. The caller is responsible for deallocating
1622** the value by passing it to sqlite3ValueFree() later on. If the expression
1623** cannot be converted to a value, then *ppVal is set to NULL.
1624*/
1625int sqlite3ValueFromExpr(
1626 sqlite3 *db, /* The database connection */
1627 Expr *pExpr, /* The expression to evaluate */
1628 u8 enc, /* Encoding to use */
1629 u8 affinity, /* Affinity to use */
1630 sqlite3_value **ppVal /* Write the new value here */
1631){
drh42735c72016-09-29 19:27:16 +00001632 return pExpr ? valueFromExpr(db, pExpr, enc, affinity, ppVal, 0) : 0;
dan87cd9322013-08-07 15:52:41 +00001633}
1634
drh175b8f02019-08-08 15:24:17 +00001635#ifdef SQLITE_ENABLE_STAT4
drh0288b212014-06-28 16:06:44 +00001636/*
1637** Attempt to extract a value from pExpr and use it to construct *ppVal.
1638**
1639** If pAlloc is not NULL, then an UnpackedRecord object is created for
1640** pAlloc if one does not exist and the new value is added to the
1641** UnpackedRecord object.
1642**
1643** A value is extracted in the following cases:
1644**
1645** * (pExpr==0). In this case the value is assumed to be an SQL NULL,
1646**
1647** * The expression is a bound variable, and this is a reprepare, or
1648**
1649** * The expression is a literal value.
1650**
1651** On success, *ppVal is made to point to the extracted value. The caller
1652** is responsible for ensuring that the value is eventually freed.
1653*/
danb0b82902014-06-26 20:21:46 +00001654static int stat4ValueFromExpr(
1655 Parse *pParse, /* Parse context */
1656 Expr *pExpr, /* The expression to extract a value from */
1657 u8 affinity, /* Affinity to use */
drh0288b212014-06-28 16:06:44 +00001658 struct ValueNewStat4Ctx *pAlloc,/* How to allocate space. Or NULL */
danb0b82902014-06-26 20:21:46 +00001659 sqlite3_value **ppVal /* OUT: New value object (or NULL) */
1660){
1661 int rc = SQLITE_OK;
1662 sqlite3_value *pVal = 0;
1663 sqlite3 *db = pParse->db;
1664
1665 /* Skip over any TK_COLLATE nodes */
1666 pExpr = sqlite3ExprSkipCollate(pExpr);
1667
drh7df74752017-06-26 14:46:05 +00001668 assert( pExpr==0 || pExpr->op!=TK_REGISTER || pExpr->op2!=TK_VARIABLE );
danb0b82902014-06-26 20:21:46 +00001669 if( !pExpr ){
1670 pVal = valueNew(db, pAlloc);
1671 if( pVal ){
1672 sqlite3VdbeMemSetNull((Mem*)pVal);
1673 }
drh7df74752017-06-26 14:46:05 +00001674 }else if( pExpr->op==TK_VARIABLE && (db->flags & SQLITE_EnableQPSG)==0 ){
danb0b82902014-06-26 20:21:46 +00001675 Vdbe *v;
1676 int iBindVar = pExpr->iColumn;
1677 sqlite3VdbeSetVarmask(pParse->pVdbe, iBindVar);
drh7df74752017-06-26 14:46:05 +00001678 if( (v = pParse->pReprepare)!=0 ){
danb0b82902014-06-26 20:21:46 +00001679 pVal = valueNew(db, pAlloc);
1680 if( pVal ){
1681 rc = sqlite3VdbeMemCopy((Mem*)pVal, &v->aVar[iBindVar-1]);
drh169dd922017-06-26 13:57:49 +00001682 sqlite3ValueApplyAffinity(pVal, affinity, ENC(db));
danb0b82902014-06-26 20:21:46 +00001683 pVal->db = pParse->db;
1684 }
1685 }
1686 }else{
1687 rc = valueFromExpr(db, pExpr, ENC(db), affinity, &pVal, pAlloc);
1688 }
1689
1690 assert( pVal==0 || pVal->db==db );
1691 *ppVal = pVal;
1692 return rc;
1693}
1694
dan87cd9322013-08-07 15:52:41 +00001695/*
dan87cd9322013-08-07 15:52:41 +00001696** This function is used to allocate and populate UnpackedRecord
1697** structures intended to be compared against sample index keys stored
1698** in the sqlite_stat4 table.
1699**
dand66e5792016-08-03 16:14:33 +00001700** A single call to this function populates zero or more fields of the
1701** record starting with field iVal (fields are numbered from left to
1702** right starting with 0). A single field is populated if:
dan87cd9322013-08-07 15:52:41 +00001703**
1704** * (pExpr==0). In this case the value is assumed to be an SQL NULL,
1705**
1706** * The expression is a bound variable, and this is a reprepare, or
1707**
1708** * The sqlite3ValueFromExpr() function is able to extract a value
1709** from the expression (i.e. the expression is a literal value).
1710**
dand66e5792016-08-03 16:14:33 +00001711** Or, if pExpr is a TK_VECTOR, one field is populated for each of the
1712** vector components that match either of the two latter criteria listed
1713** above.
1714**
1715** Before any value is appended to the record, the affinity of the
1716** corresponding column within index pIdx is applied to it. Before
1717** this function returns, output parameter *pnExtract is set to the
1718** number of values appended to the record.
dan87cd9322013-08-07 15:52:41 +00001719**
1720** When this function is called, *ppRec must either point to an object
1721** allocated by an earlier call to this function, or must be NULL. If it
1722** is NULL and a value can be successfully extracted, a new UnpackedRecord
1723** is allocated (and *ppRec set to point to it) before returning.
1724**
1725** Unless an error is encountered, SQLITE_OK is returned. It is not an
1726** error if a value cannot be extracted from pExpr. If an error does
1727** occur, an SQLite error code is returned.
1728*/
dan7a419232013-08-06 20:01:43 +00001729int sqlite3Stat4ProbeSetValue(
1730 Parse *pParse, /* Parse context */
dan87cd9322013-08-07 15:52:41 +00001731 Index *pIdx, /* Index being probed */
1732 UnpackedRecord **ppRec, /* IN/OUT: Probe record */
dan7a419232013-08-06 20:01:43 +00001733 Expr *pExpr, /* The expression to extract a value from */
dand66e5792016-08-03 16:14:33 +00001734 int nElem, /* Maximum number of values to append */
dan7a419232013-08-06 20:01:43 +00001735 int iVal, /* Array element to populate */
dand66e5792016-08-03 16:14:33 +00001736 int *pnExtract /* OUT: Values appended to the record */
dan7a419232013-08-06 20:01:43 +00001737){
dand66e5792016-08-03 16:14:33 +00001738 int rc = SQLITE_OK;
1739 int nExtract = 0;
danb0b82902014-06-26 20:21:46 +00001740
dand66e5792016-08-03 16:14:33 +00001741 if( pExpr==0 || pExpr->op!=TK_SELECT ){
1742 int i;
1743 struct ValueNewStat4Ctx alloc;
dan7a419232013-08-06 20:01:43 +00001744
dand66e5792016-08-03 16:14:33 +00001745 alloc.pParse = pParse;
1746 alloc.pIdx = pIdx;
1747 alloc.ppRec = ppRec;
1748
1749 for(i=0; i<nElem; i++){
1750 sqlite3_value *pVal = 0;
drhfc7f27b2016-08-20 00:07:01 +00001751 Expr *pElem = (pExpr ? sqlite3VectorFieldSubexpr(pExpr, i) : 0);
dand66e5792016-08-03 16:14:33 +00001752 u8 aff = sqlite3IndexColumnAffinity(pParse->db, pIdx, iVal+i);
1753 alloc.iVal = iVal+i;
1754 rc = stat4ValueFromExpr(pParse, pElem, aff, &alloc, &pVal);
1755 if( !pVal ) break;
1756 nExtract++;
1757 }
1758 }
1759
1760 *pnExtract = nExtract;
danb0b82902014-06-26 20:21:46 +00001761 return rc;
1762}
dan87cd9322013-08-07 15:52:41 +00001763
danb0b82902014-06-26 20:21:46 +00001764/*
1765** Attempt to extract a value from expression pExpr using the methods
1766** as described for sqlite3Stat4ProbeSetValue() above.
1767**
1768** If successful, set *ppVal to point to a new value object and return
1769** SQLITE_OK. If no value can be extracted, but no other error occurs
1770** (e.g. OOM), return SQLITE_OK and set *ppVal to NULL. Or, if an error
1771** does occur, return an SQLite error code. The final value of *ppVal
1772** is undefined in this case.
1773*/
1774int sqlite3Stat4ValueFromExpr(
1775 Parse *pParse, /* Parse context */
1776 Expr *pExpr, /* The expression to extract a value from */
1777 u8 affinity, /* Affinity to use */
1778 sqlite3_value **ppVal /* OUT: New value object (or NULL) */
1779){
1780 return stat4ValueFromExpr(pParse, pExpr, affinity, 0, ppVal);
1781}
1782
drh0288b212014-06-28 16:06:44 +00001783/*
1784** Extract the iCol-th column from the nRec-byte record in pRec. Write
1785** the column value into *ppVal. If *ppVal is initially NULL then a new
1786** sqlite3_value object is allocated.
1787**
1788** If *ppVal is initially NULL then the caller is responsible for
1789** ensuring that the value written into *ppVal is eventually freed.
1790*/
danb0b82902014-06-26 20:21:46 +00001791int sqlite3Stat4Column(
1792 sqlite3 *db, /* Database handle */
1793 const void *pRec, /* Pointer to buffer containing record */
1794 int nRec, /* Size of buffer pRec in bytes */
1795 int iCol, /* Column to extract */
1796 sqlite3_value **ppVal /* OUT: Extracted value */
1797){
mistachkined5e7722018-08-17 21:14:28 +00001798 u32 t = 0; /* a column type code */
drh0288b212014-06-28 16:06:44 +00001799 int nHdr; /* Size of the header in the record */
1800 int iHdr; /* Next unread header byte */
1801 int iField; /* Next unread data byte */
mistachkined5e7722018-08-17 21:14:28 +00001802 int szField = 0; /* Size of the current data field */
drh0288b212014-06-28 16:06:44 +00001803 int i; /* Column index */
1804 u8 *a = (u8*)pRec; /* Typecast byte array */
1805 Mem *pMem = *ppVal; /* Write result into this Mem object */
1806
1807 assert( iCol>0 );
1808 iHdr = getVarint32(a, nHdr);
1809 if( nHdr>nRec || iHdr>=nHdr ) return SQLITE_CORRUPT_BKPT;
1810 iField = nHdr;
1811 for(i=0; i<=iCol; i++){
1812 iHdr += getVarint32(&a[iHdr], t);
1813 testcase( iHdr==nHdr );
1814 testcase( iHdr==nHdr+1 );
1815 if( iHdr>nHdr ) return SQLITE_CORRUPT_BKPT;
1816 szField = sqlite3VdbeSerialTypeLen(t);
1817 iField += szField;
1818 }
1819 testcase( iField==nRec );
1820 testcase( iField==nRec+1 );
1821 if( iField>nRec ) return SQLITE_CORRUPT_BKPT;
danb0b82902014-06-26 20:21:46 +00001822 if( pMem==0 ){
drh0288b212014-06-28 16:06:44 +00001823 pMem = *ppVal = sqlite3ValueNew(db);
mistachkinfad30392016-02-13 23:43:46 +00001824 if( pMem==0 ) return SQLITE_NOMEM_BKPT;
danb0b82902014-06-26 20:21:46 +00001825 }
drh0288b212014-06-28 16:06:44 +00001826 sqlite3VdbeSerialGet(&a[iField-szField], t, pMem);
1827 pMem->enc = ENC(db);
1828 return SQLITE_OK;
dan7a419232013-08-06 20:01:43 +00001829}
1830
dan87cd9322013-08-07 15:52:41 +00001831/*
1832** Unless it is NULL, the argument must be an UnpackedRecord object returned
1833** by an earlier call to sqlite3Stat4ProbeSetValue(). This call deletes
1834** the object.
1835*/
dan7a419232013-08-06 20:01:43 +00001836void sqlite3Stat4ProbeFree(UnpackedRecord *pRec){
1837 if( pRec ){
1838 int i;
drha485ad12017-08-02 22:43:14 +00001839 int nCol = pRec->pKeyInfo->nAllField;
dan7a419232013-08-06 20:01:43 +00001840 Mem *aMem = pRec->aMem;
1841 sqlite3 *db = aMem[0].db;
dandd6e1f12013-08-10 19:08:30 +00001842 for(i=0; i<nCol; i++){
drhcef25842015-04-20 13:59:18 +00001843 sqlite3VdbeMemRelease(&aMem[i]);
dan7a419232013-08-06 20:01:43 +00001844 }
drh2ec2fb22013-11-06 19:59:23 +00001845 sqlite3KeyInfoUnref(pRec->pKeyInfo);
drhdbd6a7d2017-04-05 12:39:49 +00001846 sqlite3DbFreeNN(db, pRec);
dan7a419232013-08-06 20:01:43 +00001847 }
1848}
dan7a419232013-08-06 20:01:43 +00001849#endif /* ifdef SQLITE_ENABLE_STAT4 */
1850
drh4f26d6c2004-05-26 23:25:30 +00001851/*
1852** Change the string value of an sqlite3_value object
1853*/
1854void sqlite3ValueSetStr(
drh17435752007-08-16 04:30:38 +00001855 sqlite3_value *v, /* Value to be set */
1856 int n, /* Length of string z */
1857 const void *z, /* Text of the new string */
1858 u8 enc, /* Encoding to use */
1859 void (*xDel)(void*) /* Destructor for the string */
drh4f26d6c2004-05-26 23:25:30 +00001860){
drhb21c8cd2007-08-21 19:33:56 +00001861 if( v ) sqlite3VdbeMemSetStr((Mem *)v, z, n, enc, xDel);
drh4f26d6c2004-05-26 23:25:30 +00001862}
1863
1864/*
1865** Free an sqlite3_value object
1866*/
1867void sqlite3ValueFree(sqlite3_value *v){
1868 if( !v ) return;
danielk1977a7a8e142008-02-13 18:25:27 +00001869 sqlite3VdbeMemRelease((Mem *)v);
drhdbd6a7d2017-04-05 12:39:49 +00001870 sqlite3DbFreeNN(((Mem*)v)->db, v);
drh4f26d6c2004-05-26 23:25:30 +00001871}
1872
1873/*
drh591909c2015-06-25 23:52:48 +00001874** The sqlite3ValueBytes() routine returns the number of bytes in the
1875** sqlite3_value object assuming that it uses the encoding "enc".
1876** The valueBytes() routine is a helper function.
drh4f26d6c2004-05-26 23:25:30 +00001877*/
drh591909c2015-06-25 23:52:48 +00001878static SQLITE_NOINLINE int valueBytes(sqlite3_value *pVal, u8 enc){
1879 return valueToText(pVal, enc)!=0 ? pVal->n : 0;
1880}
drhb21c8cd2007-08-21 19:33:56 +00001881int sqlite3ValueBytes(sqlite3_value *pVal, u8 enc){
drh4f26d6c2004-05-26 23:25:30 +00001882 Mem *p = (Mem*)pVal;
drh591909c2015-06-25 23:52:48 +00001883 assert( (p->flags & MEM_Null)==0 || (p->flags & (MEM_Str|MEM_Blob))==0 );
1884 if( (p->flags & MEM_Str)!=0 && pVal->enc==enc ){
1885 return p->n;
1886 }
1887 if( (p->flags & MEM_Blob)!=0 ){
drhb026e052007-05-02 01:34:31 +00001888 if( p->flags & MEM_Zero ){
drh8df32842008-12-09 02:51:23 +00001889 return p->n + p->u.nZero;
drhb026e052007-05-02 01:34:31 +00001890 }else{
1891 return p->n;
1892 }
drh4f26d6c2004-05-26 23:25:30 +00001893 }
drh591909c2015-06-25 23:52:48 +00001894 if( p->flags & MEM_Null ) return 0;
1895 return valueBytes(pVal, enc);
drh4f26d6c2004-05-26 23:25:30 +00001896}